WO2007046773A1 - Fabrication of transistors - Google Patents

Fabrication of transistors Download PDF

Info

Publication number
WO2007046773A1
WO2007046773A1 PCT/SG2006/000255 SG2006000255W WO2007046773A1 WO 2007046773 A1 WO2007046773 A1 WO 2007046773A1 SG 2006000255 W SG2006000255 W SG 2006000255W WO 2007046773 A1 WO2007046773 A1 WO 2007046773A1
Authority
WO
WIPO (PCT)
Prior art keywords
layer
epitaxial layers
seed
conductive
source
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/SG2006/000255
Other languages
French (fr)
Inventor
Shu Yuan
Xuejun Kang
Shi Ming Lin
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Tinggi Technologies Pte Ltd
Original Assignee
Tinggi Technologies Pte Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Tinggi Technologies Pte Ltd filed Critical Tinggi Technologies Pte Ltd
Priority to US12/091,036 priority Critical patent/US8067269B2/en
Priority to EP06784267A priority patent/EP1949442A4/en
Priority to CN2006800390468A priority patent/CN101351887B/en
Priority to JP2008536553A priority patent/JP2009513014A/en
Publication of WO2007046773A1 publication Critical patent/WO2007046773A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • H—ELECTRICITY
    • H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
    • H10D30/00—Field-effect transistors [FET]
    • H10D30/40—FETs having zero-dimensional [0D], one-dimensional [1D] or two-dimensional [2D] charge carrier gas channels
    • H10D30/47—FETs having zero-dimensional [0D], one-dimensional [1D] or two-dimensional [2D] charge carrier gas channels having two-dimensional [2D] charge carrier gas channels, e.g. nanoribbon FETs or high electron mobility transistors [HEMT]
    • H—ELECTRICITY
    • H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
    • H10D84/00—Integrated devices formed in or on semiconductor substrates that comprise only semiconducting layers, e.g. on Si wafers or on GaAs-on-Si wafers
    • H10D84/01—Manufacture or treatment
    • H—ELECTRICITY
    • H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
    • H10D30/00—Field-effect transistors [FET]
    • H10D30/01—Manufacture or treatment
    • H10D30/015—Manufacture or treatment of FETs having heterojunction interface channels or heterojunction gate electrodes, e.g. HEMT
    • H—ELECTRICITY
    • H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10P—GENERIC PROCESSES OR APPARATUS FOR THE MANUFACTURE OR TREATMENT OF DEVICES COVERED BY CLASS H10
    • H10P10/00—Bonding of wafers, substrates or parts of devices
    • H—ELECTRICITY
    • H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
    • H10D62/00—Semiconductor bodies, or regions thereof, of devices having potential barriers
    • H10D62/80—Semiconductor bodies, or regions thereof, of devices having potential barriers characterised by the materials
    • H10D62/85—Semiconductor bodies, or regions thereof, of devices having potential barriers characterised by the materials being Group III-V materials, e.g. GaAs
    • H10D62/8503—Nitride Group III-V materials, e.g. AlN or GaN

Definitions

  • This invention relates to the fabrication of transistors and refers particularly, though not exclusively, to the fabrication of gallium nitride high electron mobility transistors ("HEMT”) and to transistors so fabricated.
  • HEMT gallium nitride high electron mobility transistors
  • HEMT devices have been proposed for a few years. They are capable of high power with over 100W/chip being possible; high frequency — 1 to 40GHz being possible; and can operate at temperatures of over 6QO 0 C. This generates a lot of heat so heat dissipation becomes important as not all devices can withstand such temperatures, and the HEMT device may be used with many other devices.
  • a method for fabricating transistors comprising: forming a plurality of source contacts on a first surface of the plurality of epitaxial layers; forming at least one drain contact on the first surface; forming at least one gate contact on the first surface; forming at least one insulating layer over and between the gate contact, source contacts and drain contact to insulate the gate contact, source contacts and the drain contact; forming a conductive layer over and through at least a part of the at least one insulating layer for connecting the source contacts; and forming at least one heat sink layer over the conductive layer.
  • an apparatus comprising transistors, each transistor comprising: a plurality of epitaxial layers having a first surface; a plurality source contacts, at least one drain contact, and at least one gate contact, all on the first surface; at (east one insulating layer over arid ' between the gate contact, source contacts and drain contact for insulating the gate contact, source contacts and the drain contact; a conductive layer over and through at least a part of the at least one insulating layer for connecting the source contacts; and at least one heat sink layer over the conductive layer.
  • the transistors may be high electron mobility transistors.
  • the plurality of epitaxial layers may comprise a layer of gallium nitride, a layer of aluminium gallium nitride, a layer of n+ aluminium gallium nitride and a final layer of gallium nitride.
  • the first surface may be on the final layer of gallium nitride.
  • the conductive layer may connect the plurality of source contacts through vias in the at least one insulating layer.
  • the at least one insulating layer may be heat conductive and electrically insulating.
  • a relatively thick layer of a heat conductive metal may be formed over the conductive layer. At least one seed layer-may be formed on the conductive layer before the relatively thick layer is formed.
  • the drain, gate and source connections may be' formed by creating then filling vias through the substrate and the epitaxial layers to the drain contact, gate contact and the conductive layer respectively.
  • the substrate may be removed and the drain, gate and source connections formed by creating then filling vias through the expitaxial layers to the drain contact, gate contact and conductive layer respectively.
  • a further layer of heat conductive but electrically insulating material may be applied in place of the substrate.
  • Figure 1 is a schematic illustration of a device at a first stage of the fabrication process
  • Figure 2 is a schematic illustration of the device at a second stage of the fabrication process
  • Figure 3 is a schematic illustration of the device at a third stage of the fabrication process
  • Figure 4 is a schematic illustration of the device -at a fourth stage of the fabrication process
  • Figure 5 is a schematic illustration of the device at a fifth stage of the fabrication process
  • Figure 6 is a schematic illustration of the device at a sixth stage of the fabrication process
  • Figure 7 is a schematic illustration of the device at a seventh stage of the fabrication process
  • Figure 8 is a schematic illustration of the device at an eighth stage of the fabrication process
  • Figure 9 is a schematic illustration of the device at a ninth stage of the fabrication process.
  • Figure 10 is a schematic illustration of the device at a tenth stage of the fabrication process
  • Figure 11 is a schematic illustration of the device at an eleventh stage of the fabrication process
  • Figure 12 is a schematic illustration of the device at a twelfth stage of the fabrication process
  • Figure 13 is a schematic illustration of the device at a thirteenth stage of the fabrication process
  • Figure 14 in a full cross-sectional view along the lines and in the direction of arrows 14 - 14 on Figure 13;
  • Figure 15 is a schematic illustration of the device at a fourteenth stage of the fabrication process;
  • Figure 16 a full cross-sectional view along the lines and in the direction of arrows 16 - 16 on Figure 15;
  • Figure 17 is a schematic illustration of the device at a fifteenth stage of the .fabrication process.
  • Figure 18 is a schematic illustration of the device at a sixteenth stage of the fabrication process
  • Figure 19 is a full cross sectional view along the lines and in the direction of arrows 19 - 19 on Figure 18;
  • Figure 20 is a schematic illustration of the device at a seventeenth stage of the fabrication process
  • Figure 21 is a schematic illustration of the device at a final stage of the fabrication process.
  • Figure 22 is a schematic illustration of the device at an alternative final stage of the fabrication process.
  • Figure 1 shows the structure at the commencement of fabrication.
  • a sapphire substrate 1 has a buffer layer 2 above it, and the epitaxial layers 3 are on the buffer layer 2.
  • the epitaxial layers 3 comprise a layer 4 of GaN, a layer 5 of AIGaN, and n+ layer 6 of AIGaN 1 and a final GaN layer 7.
  • Source 8 and drain 9 contacts are then formed on the surface of the final GaN layer ( Figure 2) there being a source 8 and a drain contact 9 for each transistor.
  • Gate contacts 10 are then formed between each source contact 8 and each drain contact 9 ( Figure 3). In this way when each gate 10 is activated current will flow from one source 8 to the two drains 9, one on each side of source contact 8.
  • an electrically insulating layer such as a passivation layer 11 of, for example AIN 1 is then applied to electrically insulate the contacts 8, 9, 10 while being able to conduct heat.
  • the layer 11 is preferably heat conductive.
  • a resist is applied over passivation layer 11 ( Figure 5) and vias 12 formed through passivation layer 11 down to the source contacts 8 and the resist removed.
  • a further layer 13 of an electrically and heat conductive metal is applied over the passivation layer 13, the layer 16 also filling the vias 12. This connects the source contacts 8 ( Figure 6). In this way, all contacts 8, 9 and 10 are in the one plane.
  • At least one further layer 14 is applied over the conductive metal layer 13 and the passivation layer 11 not covered by the conductive metal layer 13.
  • the further layer 14 is a seed layer.
  • the seed layer 14 may be a number of layers - for example, three different metal layers.
  • the first seed layer should adhere well to the conductive layer 13 and may be of chromium or titanium. It may be followed by second layer and third layer that may be of tantalum and copper respectively. Other materials may be used for all seed layers.
  • the second seed layer may act as a diffusion barrier, preventing copper or other materials placed on top of it (such as, for example, the third seed layer) from diffusing into the expitaxial layers 3.
  • the third seed layer acts as a seeding layer for subsequent electroplating.
  • the seed layers can be used to buffer the stress. This may be by one or more of: by having sufficient flexibility to absorb the stress, by having sufficient internal slip characteristics to absorb the stress, by having sufficient rigidity to withstand the stress, and by having graded thermal expansion coefficients.
  • the first layer 15 may be tantalum with a coefficient of thermal expansion of 6.3
  • the second layer 6 may be copper with a coefficient of thermal expansion of 16.5.
  • coefficients of thermal expansion are graded from the passivation layer 13 and to the outer, copper layer 18.
  • An alternative is to have coefficients of expansion that differ such that at the temperatures concerned, one metal layer expands while another contracts.
  • the outer, copper layer 18 was applied directly to the contact layer 13 and passivation layer 11, the differences in their thermal expansion rates may cause cracking, separation, and/or failure.
  • the intermediate. layer(s) should have coefficient(s) of expansion " between those of layers 15 and 16, and should be graded from that of the first layer 15 to that of the final layer 16. There may be no intermediate layer, or there may be any required or desired number of intermediate layers (one, two, three and so forth).
  • a pattern of thick resists 17 is applied to the seed layer 15 by standard photolithography ( Figure 8), and the remaining metal 18 is plated between and over the thick resists 17 ( Figure 9) to form a single metal support layer 18.
  • the removal or lift-off of the sapphire substrate 1 then takes place ( Figures 10 and 11 ) in accordance with known techniques such as, for example, that described in Kelly [M. K. Kelly, O. Ambacher, R. Dimitrov, R. Handschuh, and M. Stutzmann, phys. stat. sol. (a) 159, R3 (1997)].
  • the substrate 1 may also be removed by polishing or wet etching. This exposes the lowermost surface 19 of the GaN layer 4. It is preferred for lift-off of the substrate to take place while the epitaxial layers 3 are intact to improve the quality of removal, and for structural strength. By having the epitaxial layers 3 intact at the time of removal the electrical and mechanical properties of the epitaxial layers 3 are preserved.
  • the thickly plated metal 18 is able to act as one or more of: the new mechanical support; and during operation of the semiconductor device is able to act as one or more of: a heat sink, a heat dissipater, and a connecting layer.
  • the final GaN layer 7 is relatively thin, the heat generated in active layers 3 is more easily able to be conducted to the thick layer 18.
  • each of the layers 11, 13 and 14 are heat conductive.
  • the seed layer(s) 14 may be an electrical insulating layer but must be a good thermal conductor e.g. AIN.
  • the thick layer 18 creates a parasitic capacitance that slows the speed of operation. By increasing the distance between layer 18 and the epitaxial layers 3, the parasitic capacitance is decreased.
  • a resist layer is applied to the now-exposed surface 19 of the GaN layer 4 and etching takes place to form at least one via 20 through epitaxial layers 13 to the drain contact 9 ( Figure 12). Via 20 is then filled ( Figure 13) to form a drain connection 21.
  • Figure 14 show a view of the drain connection 20, source contacts 8 and gate contacts 10.
  • a separate via 22 is formed ( Figure 15) through the expitaxial layers 3 to the gate contact 10 and via 22 is filled to form a gate connection 23.
  • Figure 16 shows a view of the gate connection 23 as well as the drain connection 20, and source contact 8.
  • Figures 17 and 18 show a similar process for the source connection 8.
  • a via 24 is formed through the expitaxia! layers 3 to the source connector layer 13 and the via 24 filled to form the source connection 25.
  • Figure 19 shows a view of the source connection 25.
  • the substrate 1 may be left in place and holes drilled by, for examples, lasers to enable the connections 20, 23 and 25 to be formed.
  • a further layer 27 of a material that is a heat conductive but electronically insulating (e.g. AIN) may be added in place of substrate 1.
  • the device HEMT device can be used with the relatively thick metal layer 18 acting as one or more of: a contact, heat sink, heat diffuser, and a physical support for the device.
  • the combined effect of the passivation layer 11 , the conductive layer 13, the seed layer 14 and the relatively thick layer 18 is that they are all conductive so they all combine to conduct heat away from the epitaxial layers 3, and for them to combine to be a heat sink.

Landscapes

  • Junction Field-Effect Transistors (AREA)
  • Thin Film Transistor (AREA)

Abstract

A method for fabricating transistors such as high electron mobility transistors, each transistor comprising a plurality of epitaxial layers on a common substrate, method comprising: (a) forming a plurality of source contacts on a first surface of the plurality of epitaxial layers; (b) forming at least one drain contact on the first surface; (c) forming at least one gate contact on the first surface; (d) forming at least one insulating layer over and between the gate contacts, source contacts and the drain contacts; (e) forming a conductive layer over at least a part of the at least one insulating layer for connecting the source contacts; and (f) forming at least one heat sink layer over the conductive layer.

Description

Fabrication of Transistors
Field of the Invention
This invention relates to the fabrication of transistors and refers particularly, though not exclusively, to the fabrication of gallium nitride high electron mobility transistors ("HEMT") and to transistors so fabricated.
Background of the Invention
HEMT devices have been proposed for a few years. They are capable of high power with over 100W/chip being possible; high frequency — 1 to 40GHz being possible; and can operate at temperatures of over 6QO0C. This generates a lot of heat so heat dissipation becomes important as not all devices can withstand such temperatures, and the HEMT device may be used with many other devices.
Summary of the Invention
In accordance with a first preferred aspect there is provided a method for fabricating transistors, each transistor comprising a plurality of epitaxial layers on a substrate, method comprising: forming a plurality of source contacts on a first surface of the plurality of epitaxial layers; forming at least one drain contact on the first surface; forming at least one gate contact on the first surface; forming at least one insulating layer over and between the gate contact, source contacts and drain contact to insulate the gate contact, source contacts and the drain contact; forming a conductive layer over and through at least a part of the at least one insulating layer for connecting the source contacts; and forming at least one heat sink layer over the conductive layer.
According to a second preferred aspect there is provided an apparatus comprising transistors, each transistor comprising: a plurality of epitaxial layers having a first surface; a plurality source contacts, at least one drain contact, and at least one gate contact, all on the first surface; at (east one insulating layer over arid ' between the gate contact, source contacts and drain contact for insulating the gate contact, source contacts and the drain contact; a conductive layer over and through at least a part of the at least one insulating layer for connecting the source contacts; and at least one heat sink layer over the conductive layer.
The transistors may be high electron mobility transistors. The plurality of epitaxial layers may comprise a layer of gallium nitride, a layer of aluminium gallium nitride, a layer of n+ aluminium gallium nitride and a final layer of gallium nitride. The first surface may be on the final layer of gallium nitride. The conductive layer may connect the plurality of source contacts through vias in the at least one insulating layer. The at least one insulating layer may be heat conductive and electrically insulating.
A relatively thick layer of a heat conductive metal may be formed over the conductive layer. At least one seed layer-may be formed on the conductive layer before the relatively thick layer is formed.
The drain, gate and source connections may be' formed by creating then filling vias through the substrate and the epitaxial layers to the drain contact, gate contact and the conductive layer respectively.
Alternatively, the substrate may be removed and the drain, gate and source connections formed by creating then filling vias through the expitaxial layers to the drain contact, gate contact and conductive layer respectively. In this case, a further layer of heat conductive but electrically insulating material may be applied in place of the substrate.
Brief Description of the Drawings
In order that the present invention may be fully understood and readily put into practical effect, there shall now be described by way of non-limitative example only preferred embodiments of the present invention, the description being with reference to the accompanying illustrative drawings.
In the drawings:
Figure 1 is a schematic illustration of a device at a first stage of the fabrication process;
Figure 2 is a schematic illustration of the device at a second stage of the fabrication process;
Figure 3 is a schematic illustration of the device at a third stage of the fabrication process;
Figure 4 is a schematic illustration of the device -at a fourth stage of the fabrication process;
Figure 5 is a schematic illustration of the device at a fifth stage of the fabrication process;
Figure 6 is a schematic illustration of the device at a sixth stage of the fabrication process;
Figure 7 is a schematic illustration of the device at a seventh stage of the fabrication process;
Figure 8 is a schematic illustration of the device at an eighth stage of the fabrication process;
Figure 9 is a schematic illustration of the device at a ninth stage of the fabrication process;
Figure 10 is a schematic illustration of the device at a tenth stage of the fabrication process;
Figure 11 is a schematic illustration of the device at an eleventh stage of the fabrication process;
Figure 12 is a schematic illustration of the device at a twelfth stage of the fabrication process;
Figure 13 is a schematic illustration of the device at a thirteenth stage of the fabrication process;
Figure 14 in a full cross-sectional view along the lines and in the direction of arrows 14 - 14 on Figure 13;
Figure 15 is a schematic illustration of the device at a fourteenth stage of the fabrication process; Figure 16 a full cross-sectional view along the lines and in the direction of arrows 16 - 16 on Figure 15;
Figure 17 is a schematic illustration of the device at a fifteenth stage of the .fabrication process; •
Figure 18 is a schematic illustration of the device at a sixteenth stage of the fabrication process;
Figure 19 is a full cross sectional view along the lines and in the direction of arrows 19 - 19 on Figure 18;
Figure 20 is a schematic illustration of the device at a seventeenth stage of the fabrication process;
Figure 21 is a schematic illustration of the device at a final stage of the fabrication process; and
Figure 22 is a schematic illustration of the device at an alternative final stage of the fabrication process.
Detailed Description of the Preferred Embodiments
Figure 1 shows the structure at the commencement of fabrication. A sapphire substrate 1 has a buffer layer 2 above it, and the epitaxial layers 3 are on the buffer layer 2. The epitaxial layers 3 comprise a layer 4 of GaN, a layer 5 of AIGaN, and n+ layer 6 of AIGaN1 and a final GaN layer 7.
Source 8 and drain 9 contacts are then formed on the surface of the final GaN layer (Figure 2) there being a source 8 and a drain contact 9 for each transistor. Gate contacts 10 are then formed between each source contact 8 and each drain contact 9 (Figure 3). In this way when each gate 10 is activated current will flow from one source 8 to the two drains 9, one on each side of source contact 8.
As shown in Figure 4, an electrically insulating layer such as a passivation layer 11 of, for example AIN1 is then applied to electrically insulate the contacts 8, 9, 10 while being able to conduct heat. The layer 11 is preferably heat conductive. A resist is applied over passivation layer 11 (Figure 5) and vias 12 formed through passivation layer 11 down to the source contacts 8 and the resist removed. A further layer 13 of an electrically and heat conductive metal is applied over the passivation layer 13, the layer 16 also filling the vias 12. This connects the source contacts 8 (Figure 6). In this way, all contacts 8, 9 and 10 are in the one plane.
As shown in Figure 7, at least one further layer 14 is applied over the conductive metal layer 13 and the passivation layer 11 not covered by the conductive metal layer 13. The further layer 14 is a seed layer.
The seed layer 14 may be a number of layers - for example, three different metal layers. The first seed layer should adhere well to the conductive layer 13 and may be of chromium or titanium. It may be followed by second layer and third layer that may be of tantalum and copper respectively. Other materials may be used for all seed layers. The second seed layer may act as a diffusion barrier, preventing copper or other materials placed on top of it (such as, for example, the third seed layer) from diffusing into the expitaxial layers 3. The third seed layer acts as a seeding layer for subsequent electroplating.
As shown, there are two layers 15, 16 with the layer 15 acting as the diffusion barrier and the other layer 16 being the seeding layer. The coefficients of thermal expansion of the seed layers may be different from that of GaN which is 3.17. While the thermal expansion coefficients of the contact layers. 13 may be different from .that of GaN (they are 1:4.2 and 1-3.4 respectively), they are relatively thin (a few nanometers) and do not pose serious stress problems to the underlining GaN epitaxial layers. However, plated copper to be added later may be as thick as hundreds of microns and thus may cause severe stress problems. Thus, the seed layers can be used to buffer the stress. This may be by one or more of: by having sufficient flexibility to absorb the stress, by having sufficient internal slip characteristics to absorb the stress, by having sufficient rigidity to withstand the stress, and by having graded thermal expansion coefficients.
In the case of graded thermal coefficients, that of the first layer preferably less than that of the second layer and that of the second layer is preferably less than that of the third layer and so forth. For example, as shown the first layer 15 may be tantalum with a coefficient of thermal expansion of 6.3, and the second layer 6 may be copper with a coefficient of thermal expansion of 16.5. In this way the coefficients of thermal expansion are graded from the passivation layer 13 and to the outer, copper layer 18. An alternative is to have coefficients of expansion that differ such that at the temperatures concerned, one metal layer expands while another contracts.
If the outer, copper layer 18 was applied directly to the contact layer 13 and passivation layer 11, the differences in their thermal expansion rates may cause cracking, separation, and/or failure. By depositing a plurality of seed layers of different materials, particularly metals each having a different coefficient of thermal expansion, the stresses of thermal expansion are spread through the seed layers with the resultant lower likelihood of cracking, separation and/or failure. If there are intermediate layer(s), the intermediate. layer(s) should have coefficient(s) of expansion" between those of layers 15 and 16, and should be graded from that of the first layer 15 to that of the final layer 16. There may be no intermediate layer, or there may be any required or desired number of intermediate layers (one, two, three and so forth).
For patterned plating of a layer 18 of relatively thick metal such as copper that will serve as the new substrate and/or heat sink, a pattern of thick resists 17 is applied to the seed layer 15 by standard photolithography (Figure 8), and the remaining metal 18 is plated between and over the thick resists 17 (Figure 9) to form a single metal support layer 18.
The removal or lift-off of the sapphire substrate 1 then takes place (Figures 10 and 11 ) in accordance with known techniques such as, for example, that described in Kelly [M. K. Kelly, O. Ambacher, R. Dimitrov, R. Handschuh, and M. Stutzmann, phys. stat. sol. (a) 159, R3 (1997)]. The substrate 1 may also be removed by polishing or wet etching. This exposes the lowermost surface 19 of the GaN layer 4. It is preferred for lift-off of the substrate to take place while the epitaxial layers 3 are intact to improve the quality of removal, and for structural strength. By having the epitaxial layers 3 intact at the time of removal the electrical and mechanical properties of the epitaxial layers 3 are preserved.
After the removal of the original substrate 1 , the thickly plated metal 18 is able to act as one or more of: the new mechanical support; and during operation of the semiconductor device is able to act as one or more of: a heat sink, a heat dissipater, and a connecting layer. As the final GaN layer 7 is relatively thin, the heat generated in active layers 3 is more easily able to be conducted to the thick layer 18. Also, each of the layers 11, 13 and 14 are heat conductive.
The seed layer(s) 14 may be an electrical insulating layer but must be a good thermal conductor e.g. AIN.
The thick layer 18 creates a parasitic capacitance that slows the speed of operation. By increasing the distance between layer 18 and the epitaxial layers 3, the parasitic capacitance is decreased.
A resist layer is applied to the now-exposed surface 19 of the GaN layer 4 and etching takes place to form at least one via 20 through epitaxial layers 13 to the drain contact 9 (Figure 12). Via 20 is then filled (Figure 13) to form a drain connection 21. Figure 14 show a view of the drain connection 20, source contacts 8 and gate contacts 10.
A separate via 22 is formed (Figure 15) through the expitaxial layers 3 to the gate contact 10 and via 22 is filled to form a gate connection 23.
Figure 16 shows a view of the gate connection 23 as well as the drain connection 20, and source contact 8.
Figures 17 and 18 show a similar process for the source connection 8. A via 24 is formed through the expitaxia! layers 3 to the source connector layer 13 and the via 24 filled to form the source connection 25. Figure 19 shows a view of the source connection 25.
Etching then takes place (Figure 20) to form gaps 26 through the epitaxial layers 3, passivation layer 11 and conductive" layer 13 until the ends of the thick resists 17 are exposed. The thick resists 17 are then removed for die separation.
This leaves the connections 20, 23 and 25 so the device can be electrically connected. Alternatively, and as shown in Figure 22, the process of Figures 17 and 18 may be avoided with die separation being as described above. Electrical connection for the source contact layer 13 will then be at either or both sides 26.
If desired, the substrate 1 may be left in place and holes drilled by, for examples, lasers to enable the connections 20, 23 and 25 to be formed. Alternatively, and as shown in Figure 21 , a further layer 27 of a material that is a heat conductive but electronically insulating (e.g. AIN) may be added in place of substrate 1.
In this way the device HEMT device can be used with the relatively thick metal layer 18 acting as one or more of: a contact, heat sink, heat diffuser, and a physical support for the device. The combined effect of the passivation layer 11 , the conductive layer 13, the seed layer 14 and the relatively thick layer 18 is that they are all conductive so they all combine to conduct heat away from the epitaxial layers 3, and for them to combine to be a heat sink.
Whilst there has been described in the foregoing description preferred embodiments of the present invention, it will be understood by those skilled in the technology concerned that many variations or modifications in details of design or construction may be made without departing from the present invention.

Claims

THE CLAIMS
1. A method for fabricating transistors, each transistor comprising a plurality of epitaxial layers on a common substrate, method comprising: forming a plurality of source contacts on a first surface of the plurality of epitaxial layers; forming at least one drain contact on the first surface; forming at least one gate contact on the first surface; forming at least one layer of insulating material over and between the gate contact, source contacts and the drain contact for insulating the gate contact, source contacts and the drain contact; forming a conductive layer over and through at least a part of the at least one insulating layer for connecting the source contacts; and forming at least one heat sink layer over the conductive layer.
2. The method as claimed in claim 1 , wherein the transistors are high electron mobility transistors, the plurality of epitaxial layers comprising a layer of gallium nitride, a layer of aluminium gallium nitride, a layer of n+ aluminium gallium nitride and a final layer of gallium nitride, the first surface being on the final layer of gallium nitride; the at least one layer of insulating material being ■ electrically insulating but heat conductive; the conductive layer connecting the plurality of source contacts through vias in the at least one insulating layer.
3. The method as claimed in claim 1 or claim 2, wherein a relatively thick layer of conductive metai is formed over the conductive layer.
4. The method as claimed in claim 3, wherein a seed layer is formed on the conductive layer before the relatively thick layer is formed.
5. The method as claimed in claim 4 wherein the seed layer comprises a plurality of seed layers, wherein a first of the plurality of seed layers is applied to the conductive layer, the first seed layer being of a material that has a first coefficient of thermal expansion; and a second seed layer is formed on the first seed layer, the second seed layer being of a material that has a second coefficient of thermal expansion, the second co-efficient of thermal expansion being greater than the first co-efficient of thermal expansion.
6. The method as claimed in claim 5, wherein one of the first seed layer and the second seed layer is a diffusion barrier for providing a barrier to diffusion of a layer applied to it from diffusing into the expitaxial layers.
7. A method as claimed in any one of claims 3 to 6, wherein the relatively thick layer is for at least one selected from the group consisting of: a structural support, a heat sink, a heat dissipater, and as a connector.
8. The method as claimed in any one of claims 1 to 7, wherein a source connection is formed by creating then filling at least one via through the common substrate and the plurality of epitaxial layers to the conductive layer.
9. The method is claimed in anyone of claims 1 to 8, wherein a drain connection is formed by creating then filing at least one via through the common substrate and the plurality of epitaxial layers to the at least one drain contact.
10. The method as claimed in any one of claims 1 to 9, wherein a gate connection is formed by creating then filling at least one via through the common substrate and the plurality of epitaxial layers to the at least one gate contact.
11. The method as claimed in any one of claims 3 to 7 further comprising removing the substrate after the relatively thick layer is formed; and forming a further layer of electrically insulating and heat conductive material in place of the substrate.
12. The method as claimed in claim 11 , wherein a source connection is formed by forming then filling at least one via through the plurality of epitaxial layers to the conductive layer.
13. The method is claimed in anyone of claim 11 or claim 12, wherein a drain connection is formed by creating then filing at least one via through the plurality of epitaxial layers to the at least one drain contact.
14. The method as claimed in any one of claims 11 to 13, wherein a gate connection is formed by creating then filling at least one via through the plurality of epitaxial layers to the at least one gate contact.
15. The method as claimed in any one of claims 3 to 14, wherein patterned plating is performed before the relatively thick layer is formed.
16. Apparatus comprising transistors, each comprising:
(a) a plurality of epitaxial layers having a first surface;
(b) a plurality of source ^contacts, at least one drain contact and at least one gate contact, all on the first surface;
(c) at least one insulating layer over and between the source contacts, the at least one drain contact and the at least one gate contact for insulating the gate contact, source contact and the drain contact;
(d) a conductive layer over and through at least a part of the at least one insulating layer for connecting the source, contacts; and
(f) at least one heat sink layer over the conductive layer.
17. The apparatus as claimed in claim 16, wherein the at least one heat sink layer is over a reminder of the at least one insulating layer not covered by the conductive layer.
18. The apparatus as claimed in claim 17, wherein the at least one insulating layer is electrically insulating and heat conductive.
19. The apparatus as claimed in any one of claims 16 to 18, wherein the plurality of epitaxial layers comprises a layer of gallium nitride, layer of aluminum gallium nitride, a layer of h+ aluminum gallium nitride and a final layer of gallium nitride, the first surface being on the final layer of gallium nitride.
20. The apparatus as claimed in any one of claims 16 to 19, wherein the conductive layer connects the plurality of source contacts through vias in the at least one insulating layer.
21. The apparatus as claimed in any one of claims 16 to 20 further comprising a relatively thick layer of conductive metal over the conductive layer.
22. The apparatus as claimed in claim 21 further comprising at least one seed layer between the conductive layer and the relatively thick layer.
23. The apparatus as claimed in claim 22, wherein the seed layer comprises a plurality of seed layers, wherein a first of the plurality of seed layers is on the conductive layer, the first seed layer being of a .material that has a first coefficient of thermal expansion; and a second seed layer is on the first seed layer, the second seed layer being of a material that has a second co-efficient of thermal expansion, the second co-efficient of thermal expansion being greater than the first co-efficient of thermal expansion.
24. The apparatus as claimed in claim 23, wherein one of the first seed layer and the second seed layer is a diffusion barrier for providing a barrier to diffusion of a layer applied to it from diffusing into the expitaxial layers.
25. The apparatus as claimed in any one of claims 21 to 24, wherein the relatively thick layer is for at least one selected from the group consisting of: a structural support, a heat sink, a heat dissipater, and a connector.
26. The apparatus as claimed in any one of claims 16 to 25 further comprising a source connection through the common substrate and the plurality of epitaxial layers to the conductive layer.
27. The apparatus as claimed in any one of claims 16 to 26 further comprising a drain connection through the common substrate and the plurality of epitaxial layers to the at least one drain contact.
28. The apparatus as claimed in any one of claims 16 to 27 further comprising a gate connection through the common substrate and the plurality of epitaxial layers to the at least one gate contact.
29. The apparatus as claimed in any one of claims 16 to 25 wherein the substrate is removed after the relatively thick layer is formed.
30. The apparatus as claimed in claim 29 further comprising a source connection through the plurality of epitaxial layers to the conductive layer.
31. The apparatus as claimed in claim 29 or claim 30 further comprising a drain connection through the plurality of epitaxial layers to the at least one source contact.
32. The apparatus as claimed in any one of claims 29 to 31 further comprising a gate connection through and the plurality of epitaxial layers to the at least one gate contact.
33. The apparatus as claimed in any one of claims 22 to 25, wherein the at least one heat sink layer comprises the relatively thick layer, the at least one seed layer, the conductive layer and the pat least one insulating layer.
34. The apparatus as claimed in any one of claims 16 to 33, wherein the transistors are high electron mobility transistors.
35. The apparatus as claimed in any one of claims 29 to 32 further comprising a layer of electrically insulating and heat conductive material in place of the substrate.
PCT/SG2006/000255 2005-10-19 2006-09-01 Fabrication of transistors Ceased WO2007046773A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
US12/091,036 US8067269B2 (en) 2005-10-19 2006-09-01 Method for fabricating at least one transistor
EP06784267A EP1949442A4 (en) 2005-10-19 2006-09-01 MANUFACTURING TRANSISTORS
CN2006800390468A CN101351887B (en) 2005-10-19 2006-09-01 Manufacturing of transistors
JP2008536553A JP2009513014A (en) 2005-10-19 2006-09-01 Transistor manufacturing

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
SG200506897-8 2005-10-19
SG200506897-8A SG131803A1 (en) 2005-10-19 2005-10-19 Fabrication of transistors

Publications (1)

Publication Number Publication Date
WO2007046773A1 true WO2007046773A1 (en) 2007-04-26

Family

ID=37962779

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/SG2006/000255 Ceased WO2007046773A1 (en) 2005-10-19 2006-09-01 Fabrication of transistors

Country Status (7)

Country Link
US (1) US8067269B2 (en)
EP (1) EP1949442A4 (en)
JP (1) JP2009513014A (en)
KR (1) KR20080074892A (en)
CN (1) CN101351887B (en)
SG (1) SG131803A1 (en)
WO (1) WO2007046773A1 (en)

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7763477B2 (en) 2004-03-15 2010-07-27 Tinggi Technologies Pte Limited Fabrication of semiconductor devices
US8004001B2 (en) 2005-09-29 2011-08-23 Tinggi Technologies Private Limited Fabrication of semiconductor devices for light emission
US8026596B2 (en) * 2007-08-15 2011-09-27 International Rectifier Corporation Thermal designs of packaged gallium nitride material devices and methods of packaging
US8034643B2 (en) 2003-09-19 2011-10-11 Tinggi Technologies Private Limited Method for fabrication of a semiconductor device
US8124994B2 (en) 2006-09-04 2012-02-28 Tinggi Technologies Private Limited Electrical current distribution in light emitting devices
US8309377B2 (en) 2004-04-07 2012-11-13 Tinggi Technologies Private Limited Fabrication of reflective layer on semiconductor light emitting devices
US8329556B2 (en) 2005-12-20 2012-12-11 Tinggi Technologies Private Limited Localized annealing during semiconductor device fabrication
US8395167B2 (en) 2006-08-16 2013-03-12 Tinggi Technologies Private Limited External light efficiency of light emitting diodes

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR101920715B1 (en) * 2012-03-06 2018-11-21 삼성전자주식회사 High Electron Mobility Transistor and method of manufacturing the same
US8636197B1 (en) * 2012-10-04 2014-01-28 Ford Global Technologies, Llc Bonding of roof panels
US9082748B2 (en) 2012-10-05 2015-07-14 Micron Technology, Inc. Devices, systems, and methods related to removing parasitic conduction in semiconductor devices
CN105552047B (en) * 2015-12-14 2018-02-27 中国电子科技集团公司第五十五研究所 A kind of AlGaN/GaN HEMT transistor fabrication process
US9697859B1 (en) * 2016-04-01 2017-07-04 WD Media, LLC Heat-assisted magnetic recording (HAMR) medium including a bi-layer that enables use of lower laser current in write operations

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4107720A (en) * 1974-10-29 1978-08-15 Raytheon Company Overlay metallization multi-channel high frequency field effect transistor
US5192987A (en) * 1991-05-17 1993-03-09 Apa Optics, Inc. High electron mobility transistor with GaN/Alx Ga1-x N heterojunctions
US20020117681A1 (en) * 2001-02-23 2002-08-29 Weeks T. Warren Gallium nitride material devices and methods including backside vias
US20040130037A1 (en) * 2003-01-02 2004-07-08 Cree Lighting Company Group III nitride based flip-chip intergrated circuit and method for fabricating
US20050127397A1 (en) * 2001-02-23 2005-06-16 Nitronex Corporation Gallium nitride materials including thermally conductive regions
US20050164482A1 (en) * 2004-01-22 2005-07-28 Cree, Inc. Silicon Carbide on Diamond Substrates and Related Devices and Methods

Family Cites Families (146)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US154390A (en) * 1874-08-25 Improvement in automatic valves for blast-furnaces
US154391A (en) * 1874-08-25 Iiviprpyement
US210970A (en) * 1878-12-17 Improvement in bale-ties
US65889A (en) * 1867-06-18 Duncan
US98792A (en) * 1870-01-11 Improvement in suspending- upper berth in sleeping-cars
US235210A (en) * 1880-12-07 Stephen h
US164480A (en) * 1875-06-15 Improvement in milk-coolers
US110395A (en) * 1870-12-20 Improvement in foundations for pavements
US189215A (en) * 1877-04-03 Improvement in carriage-seat locks
US99730A (en) * 1870-02-08 Improved draught-bar for horse-cars
US151801A (en) * 1874-06-09 Improvement in feeding mechanisms for sewing-machines
US154393A (en) * 1874-08-25 Improvement in composite columns
US189212A (en) * 1877-04-03 Improvement in butter-pails
US142875A (en) * 1873-09-16 Improvement in armpit-shields
US137243A (en) * 1873-03-25 Improvement in musical instruments
US6554A (en) * 1849-06-26 Adjustable platform for animal-traps
US55324A (en) * 1866-06-05 Improved apparatus for carbureting air
US157721A (en) * 1874-12-15 Improvement in cultivators
US154392A (en) * 1874-08-25 Improvement in heaters for wash-stands
US3848490A (en) 1973-11-02 1974-11-19 Gerber Garment Technology Inc Method and apparatus for controlling a cutting tool
US3897627A (en) 1974-06-28 1975-08-05 Rca Corp Method for manufacturing semiconductor devices
JPS5831751B2 (en) 1975-10-31 1983-07-08 松下電器産業株式会社 Manufacturing method of semiconductor laser
JPS59112667A (en) 1982-12-17 1984-06-29 Fujitsu Ltd Light emitting diode
JPS6395661A (en) 1986-10-13 1988-04-26 Toshiba Corp Semiconductor element electrode
JPH06310500A (en) 1993-01-22 1994-11-04 Toshiba Corp Manufacture of semiconductor device
US5376580A (en) 1993-03-19 1994-12-27 Hewlett-Packard Company Wafer bonding of light emitting diode layers
JPH07326628A (en) * 1994-06-01 1995-12-12 Fujitsu Ltd Semiconductor device and mounting method thereof
US5654228A (en) 1995-03-17 1997-08-05 Motorola VCSEL having a self-aligned heat sink and method of making
JP3511970B2 (en) 1995-06-15 2004-03-29 日亜化学工業株式会社 Nitride semiconductor light emitting device
FR2737342B1 (en) 1995-07-25 1997-08-22 Thomson Csf SEMICONDUCTOR COMPONENT WITH INTEGRATED THERMAL DISSIPATOR
KR0159388B1 (en) 1995-09-30 1999-02-01 배순훈 Flattening method
JP2005260255A (en) * 1996-02-19 2005-09-22 Sharp Corp Compound semiconductor device and manufacturing method thereof
US5811927A (en) 1996-06-21 1998-09-22 Motorola, Inc. Method for affixing spacers within a flat panel display
US6210479B1 (en) 1999-02-26 2001-04-03 International Business Machines Corporation Product and process for forming a semiconductor structure on a host substrate
US6784463B2 (en) 1997-06-03 2004-08-31 Lumileds Lighting U.S., Llc III-Phospide and III-Arsenide flip chip light-emitting devices
US6559038B2 (en) 1997-11-18 2003-05-06 Technologies And Devices International, Inc. Method for growing p-n heterojunction-based structures utilizing HVPE techniques
KR19990052640A (en) 1997-12-23 1999-07-15 김효근 Metal thin film for diode using ohmic contact formation and manufacturing method thereof
US6071795A (en) 1998-01-23 2000-06-06 The Regents Of The University Of California Separation of thin films from transparent substrates by selective optical processing
US6091085A (en) 1998-02-19 2000-07-18 Agilent Technologies, Inc. GaN LEDs with improved output coupling efficiency
JP3144377B2 (en) * 1998-03-13 2001-03-12 日本電気株式会社 Method for manufacturing semiconductor device
JP3847477B2 (en) 1998-12-17 2006-11-22 豊田合成株式会社 Group III nitride compound semiconductor light emitting device
DE19921987B4 (en) 1998-05-13 2007-05-16 Toyoda Gosei Kk Light-emitting semiconductor device with group III element-nitride compounds
US6803243B2 (en) 2001-03-15 2004-10-12 Cree, Inc. Low temperature formation of backside ohmic contacts for vertical devices
JP3525061B2 (en) 1998-09-25 2004-05-10 株式会社東芝 Method for manufacturing semiconductor light emitting device
US6307218B1 (en) 1998-11-20 2001-10-23 Lumileds Lighting, U.S., Llc Electrode structures for light emitting devices
JP3739951B2 (en) 1998-11-25 2006-01-25 東芝電子エンジニアリング株式会社 Semiconductor light emitting device and manufacturing method thereof
JP3531722B2 (en) 1998-12-28 2004-05-31 信越半導体株式会社 Light emitting diode manufacturing method
US6744800B1 (en) 1998-12-30 2004-06-01 Xerox Corporation Method and structure for nitride based laser diode arrays on an insulating substrate
US6426512B1 (en) 1999-03-05 2002-07-30 Toyoda Gosei Co., Ltd. Group III nitride compound semiconductor device
JP2000294837A (en) 1999-04-05 2000-10-20 Stanley Electric Co Ltd Gallium nitride based compound semiconductor light emitting device
US6020261A (en) 1999-06-01 2000-02-01 Motorola, Inc. Process for forming high aspect ratio circuit features
GB9913950D0 (en) 1999-06-15 1999-08-18 Arima Optoelectronics Corp Unipolar light emitting devices based on iii-nitride semiconductor superlattices
JP4189710B2 (en) 1999-07-16 2008-12-03 Dowaエレクトロニクス株式会社 Manufacturing method of light emitting diode
JP2001035974A (en) * 1999-07-19 2001-02-09 Nec Corp Semiconductor device, and manufacture thereof
JP2001049491A (en) 1999-08-04 2001-02-20 Fujitsu Ltd Cu ELECTROPLATING FILM FORMING METHOD
JP3633447B2 (en) 1999-09-29 2005-03-30 豊田合成株式会社 Group III nitride compound semiconductor device
US6492661B1 (en) 1999-11-04 2002-12-10 Fen-Ren Chien Light emitting semiconductor device having reflection layer structure
CN1292493C (en) 1999-12-03 2006-12-27 美商克立股份有限公司 Enhanced light extration in LEDs through the use of internal and external optical elements
JP2001168094A (en) * 1999-12-06 2001-06-22 Murata Mfg Co Ltd Wiring structure, wiring forming method, and semiconductor device
US6573537B1 (en) 1999-12-22 2003-06-03 Lumileds Lighting, U.S., Llc Highly reflective ohmic contacts to III-nitride flip-chip LEDs
US6514782B1 (en) 1999-12-22 2003-02-04 Lumileds Lighting, U.S., Llc Method of making a III-nitride light-emitting device with increased light generating capability
JP4501225B2 (en) 2000-02-21 2010-07-14 日亜化学工業株式会社 Light emitting device and method for manufacturing light emitting device
JP2001237461A (en) 2000-02-22 2001-08-31 Toshiba Corp Semiconductor light emitting device
JP2001313390A (en) 2000-02-29 2001-11-09 Agere Systems Inc Selective laser annealing in semiconductor materials
JP4060511B2 (en) 2000-03-28 2008-03-12 パイオニア株式会社 Method for separating nitride semiconductor device
DE10051465A1 (en) 2000-10-17 2002-05-02 Osram Opto Semiconductors Gmbh Method for producing a GaN-based semiconductor component
WO2001084640A1 (en) 2000-04-26 2001-11-08 Osram Opto Semiconductors Gmbh Gan-based light-emitting-diode chip and a method for producing a luminescent diode component
JP2002083999A (en) 2000-06-21 2002-03-22 Sharp Corp Semiconductor light emitting device
US6420732B1 (en) 2000-06-26 2002-07-16 Luxnet Corporation Light emitting diode of improved current blocking and light extraction structure
US6661028B2 (en) 2000-08-01 2003-12-09 United Epitaxy Company, Ltd. Interface texturing for light-emitting device
TW456058B (en) 2000-08-10 2001-09-21 United Epitaxy Co Ltd Light emitting diode and the manufacturing method thereof
US6380564B1 (en) 2000-08-16 2002-04-30 United Epitaxy Company, Ltd. Semiconductor light emitting device
US6562648B1 (en) 2000-08-23 2003-05-13 Xerox Corporation Structure and method for separation and transfer of semiconductor thin films onto dissimilar substrate materials
TW466784B (en) 2000-09-19 2001-12-01 United Epitaxy Co Ltd Method to manufacture high luminescence LED by using glass pasting
TW475276B (en) 2000-11-07 2002-02-01 Ind Tech Res Inst GaN based III-V compound semiconductor light-emitting device
US6791119B2 (en) 2001-02-01 2004-09-14 Cree, Inc. Light emitting diodes including modifications for light extraction
JP3970530B2 (en) 2001-02-19 2007-09-05 三菱電機株式会社 Semiconductor device and manufacturing method thereof
CN1185720C (en) 2001-03-05 2005-01-19 全新光电科技股份有限公司 A light-emitting diode coated with a metal mirror film substrate and its manufacturing method
US6468824B2 (en) 2001-03-22 2002-10-22 Uni Light Technology Inc. Method for forming a semiconductor device having a metallic substrate
US6589857B2 (en) 2001-03-23 2003-07-08 Matsushita Electric Industrial Co., Ltd. Manufacturing method of semiconductor film
US6509270B1 (en) 2001-03-30 2003-01-21 Cypress Semiconductor Corp. Method for polishing a semiconductor topography
KR100482174B1 (en) 2001-08-08 2005-04-13 삼성전기주식회사 Fabrication Method of GaN related LED using Substrate Remove Technology
US20030064535A1 (en) 2001-09-28 2003-04-03 Kub Francis J. Method of manufacturing a semiconductor device having a thin GaN material directly bonded to an optimized substrate
JP4336071B2 (en) * 2001-11-08 2009-09-30 古河電気工業株式会社 Semiconductor device with excellent heat dissipation
US6784462B2 (en) 2001-12-13 2004-08-31 Rensselaer Polytechnic Institute Light-emitting diode with planar omni-directional reflector
US6455340B1 (en) 2001-12-21 2002-09-24 Xerox Corporation Method of fabricating GaN semiconductor structures using laser-assisted epitaxial liftoff
JP3782357B2 (en) 2002-01-18 2006-06-07 株式会社東芝 Manufacturing method of semiconductor light emitting device
JP2003243700A (en) 2002-02-12 2003-08-29 Toyoda Gosei Co Ltd Group III nitride compound semiconductor light emitting device
JP4242599B2 (en) 2002-04-08 2009-03-25 パナソニック株式会社 Method for manufacturing nitride semiconductor device and method for manufacturing nitride semiconductor substrate
US20030189215A1 (en) 2002-04-09 2003-10-09 Jong-Lam Lee Method of fabricating vertical structure leds
US8294172B2 (en) 2002-04-09 2012-10-23 Lg Electronics Inc. Method of fabricating vertical devices using a metal support film
JP3896027B2 (en) 2002-04-17 2007-03-22 シャープ株式会社 Nitride-based semiconductor light-emitting device and method for manufacturing the same
JP4233268B2 (en) 2002-04-23 2009-03-04 シャープ株式会社 Nitride-based semiconductor light-emitting device and manufacturing method thereof
JP3962282B2 (en) 2002-05-23 2007-08-22 松下電器産業株式会社 Manufacturing method of semiconductor device
JP3962283B2 (en) 2002-05-29 2007-08-22 松下電器産業株式会社 Manufacturing method of semiconductor device
JP2004014938A (en) 2002-06-10 2004-01-15 Matsushita Electric Ind Co Ltd Semiconductor device and manufacturing method thereof
JP2004088083A (en) 2002-06-25 2004-03-18 Matsushita Electric Ind Co Ltd Semiconductor light emitting device, method of manufacturing the same, and method of mounting the same
TW540171B (en) 2002-07-18 2003-07-01 United Epitaxy Co Ltd Manufacturing method of high-power light emitting diode
JP2004072052A (en) 2002-08-09 2004-03-04 Matsushita Electric Ind Co Ltd Semiconductor device and manufacturing method thereof
US6649437B1 (en) 2002-08-20 2003-11-18 United Epitaxy Company, Ltd. Method of manufacturing high-power light emitting diodes
US20040104395A1 (en) 2002-11-28 2004-06-03 Shin-Etsu Handotai Co., Ltd. Light-emitting device, method of fabricating the same, and OHMIC electrode structure for semiconductor device
KR100495215B1 (en) 2002-12-27 2005-06-14 삼성전기주식회사 VERTICAL GaN LIGHT EMITTING DIODE AND METHOD OF PRODUCING THE SAME
JP4179539B2 (en) 2003-01-15 2008-11-12 富士通株式会社 Compound semiconductor device and manufacturing method thereof
US6961259B2 (en) * 2003-01-23 2005-11-01 Micron Technology, Inc. Apparatus and methods for optically-coupled memory systems
JP4492034B2 (en) 2003-04-11 2010-06-30 日亜化学工業株式会社 HEMT and manufacturing method thereof
US7338822B2 (en) 2003-05-09 2008-03-04 Cree, Inc. LED fabrication via ion implant isolation
JP4295669B2 (en) 2003-05-22 2009-07-15 パナソニック株式会社 Manufacturing method of semiconductor device
US7244628B2 (en) 2003-05-22 2007-07-17 Matsushita Electric Industrial Co., Ltd. Method for fabricating semiconductor devices
KR100483049B1 (en) 2003-06-03 2005-04-15 삼성전기주식회사 A METHOD OF PRODUCING VERTICAL GaN LIGHT EMITTING DIODES
US6921924B2 (en) 2003-06-18 2005-07-26 United Epitaxy Company, Ltd Semiconductor light-emitting device
US6967346B2 (en) 2003-08-02 2005-11-22 Formosa Epitaxy Incorporation Light emitting diode structure and manufacture method thereof
US6958494B2 (en) 2003-08-14 2005-10-25 Dicon Fiberoptics, Inc. Light emitting diodes with current spreading layer
CN101373807B (en) 2003-09-19 2010-06-09 霆激技术有限公司 Fabrication of Conductive Metal Layers on Semiconductor Devices
US8034643B2 (en) 2003-09-19 2011-10-11 Tinggi Technologies Private Limited Method for fabrication of a semiconductor device
US6911376B2 (en) 2003-10-01 2005-06-28 Wafermasters Selective heating using flash anneal
US7700973B2 (en) * 2003-10-10 2010-04-20 The Regents Of The University Of California GaN/AlGaN/GaN dispersion-free high electron mobility transistors
TWI313071B (en) 2003-10-15 2009-08-01 Epistar Corporatio Light-emitting semiconductor device having enhanced brightness
US7119372B2 (en) 2003-10-24 2006-10-10 Gelcore, Llc Flip-chip light emitting diode
US7012281B2 (en) 2003-10-30 2006-03-14 Epistar Corporation Light emitting diode device and manufacturing method
US7704763B2 (en) 2003-12-09 2010-04-27 The Regents Of The University Of California Highly efficient group-III nitride based light emitting diodes via fabrication of structures on an N-face surface
JP4647216B2 (en) 2004-02-19 2011-03-09 信越半導体株式会社 Method for manufacturing GaP light emitting device
JP2007535804A (en) 2004-03-15 2007-12-06 ティンギ テクノロジーズ プライベート リミテッド Semiconductor device manufacturing
JP4356494B2 (en) 2004-03-30 2009-11-04 株式会社デンソー Semiconductor device
CN1961412B (en) * 2004-03-30 2010-05-26 日本电气株式会社 Semiconductor device with a plurality of transistors
KR20070028364A (en) 2004-04-07 2007-03-12 팅기 테크놀러지스 프라이빗 리미티드 Fabrication of Reflective Layers on Semiconductor Light Emitting Diodes
KR101254539B1 (en) 2004-04-28 2013-04-19 버티클 인코퍼레이티드 Vertical structure semiconductor devices
US7791061B2 (en) 2004-05-18 2010-09-07 Cree, Inc. External extraction light emitting diode based upon crystallographic faceted surfaces
TWI433343B (en) 2004-06-22 2014-04-01 維帝克股份有限公司 Vertical structure semiconductor device with improved light output
CN100383989C (en) * 2004-11-23 2008-04-23 北京大学 Laser lift-off power LED chip on metal heat sink and preparation method thereof
WO2006065010A1 (en) 2004-12-13 2006-06-22 Lg Chem, Ltd. METHOD FOR MANUFACTURING G a N-BASED LIGHT EMITTING DIODE USING LASER LIFT-OFF TECHNIQUE AND LIGHT EMITTING DIODE MANUFACTURED THEREBY
US20060151801A1 (en) 2005-01-11 2006-07-13 Doan Trung T Light emitting diode with thermo-electric cooler
US20060154393A1 (en) 2005-01-11 2006-07-13 Doan Trung T Systems and methods for removing operating heat from a light emitting diode
US7195944B2 (en) 2005-01-11 2007-03-27 Semileds Corporation Systems and methods for producing white-light emitting diodes
US7378288B2 (en) 2005-01-11 2008-05-27 Semileds Corporation Systems and methods for producing light emitting diode array
US7186580B2 (en) 2005-01-11 2007-03-06 Semileds Corporation Light emitting diodes (LEDs) with improved light extraction by roughening
US7413918B2 (en) 2005-01-11 2008-08-19 Semileds Corporation Method of making a light emitting diode
US7335920B2 (en) 2005-01-24 2008-02-26 Cree, Inc. LED with current confinement structure and surface roughening
EP1693891B1 (en) 2005-01-31 2019-07-31 IMEC vzw Method of manufacturing a semiconductor device
JP4980615B2 (en) 2005-02-08 2012-07-18 ローム株式会社 Semiconductor light emitting device and manufacturing method thereof
US7348212B2 (en) 2005-09-13 2008-03-25 Philips Lumileds Lighting Company Llc Interconnects for semiconductor light emitting devices
US20070029541A1 (en) 2005-08-04 2007-02-08 Huoping Xin High efficiency light emitting device
SG130975A1 (en) 2005-09-29 2007-04-26 Tinggi Tech Private Ltd Fabrication of semiconductor devices for light emission
SG133432A1 (en) 2005-12-20 2007-07-30 Tinggi Tech Private Ltd Localized annealing during semiconductor device fabrication
US7413980B2 (en) * 2006-04-25 2008-08-19 Texas Instruments Incorporated Semiconductor device with improved contact fuse
SG140473A1 (en) 2006-08-16 2008-03-28 Tinggi Tech Private Ltd Improvements in external light efficiency of light emitting diodes
SG140512A1 (en) 2006-09-04 2008-03-28 Tinggi Tech Private Ltd Electrical current distribution in light emitting devices

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4107720A (en) * 1974-10-29 1978-08-15 Raytheon Company Overlay metallization multi-channel high frequency field effect transistor
US5192987A (en) * 1991-05-17 1993-03-09 Apa Optics, Inc. High electron mobility transistor with GaN/Alx Ga1-x N heterojunctions
US20020117681A1 (en) * 2001-02-23 2002-08-29 Weeks T. Warren Gallium nitride material devices and methods including backside vias
US20050127397A1 (en) * 2001-02-23 2005-06-16 Nitronex Corporation Gallium nitride materials including thermally conductive regions
US20040130037A1 (en) * 2003-01-02 2004-07-08 Cree Lighting Company Group III nitride based flip-chip intergrated circuit and method for fabricating
US20050164482A1 (en) * 2004-01-22 2005-07-28 Cree, Inc. Silicon Carbide on Diamond Substrates and Related Devices and Methods

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP1949442A4 *

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8034643B2 (en) 2003-09-19 2011-10-11 Tinggi Technologies Private Limited Method for fabrication of a semiconductor device
US7763477B2 (en) 2004-03-15 2010-07-27 Tinggi Technologies Pte Limited Fabrication of semiconductor devices
US8309377B2 (en) 2004-04-07 2012-11-13 Tinggi Technologies Private Limited Fabrication of reflective layer on semiconductor light emitting devices
US8004001B2 (en) 2005-09-29 2011-08-23 Tinggi Technologies Private Limited Fabrication of semiconductor devices for light emission
US8329556B2 (en) 2005-12-20 2012-12-11 Tinggi Technologies Private Limited Localized annealing during semiconductor device fabrication
US8395167B2 (en) 2006-08-16 2013-03-12 Tinggi Technologies Private Limited External light efficiency of light emitting diodes
US8124994B2 (en) 2006-09-04 2012-02-28 Tinggi Technologies Private Limited Electrical current distribution in light emitting devices
US8026596B2 (en) * 2007-08-15 2011-09-27 International Rectifier Corporation Thermal designs of packaged gallium nitride material devices and methods of packaging

Also Published As

Publication number Publication date
EP1949442A1 (en) 2008-07-30
EP1949442A4 (en) 2011-03-09
CN101351887B (en) 2010-11-03
JP2009513014A (en) 2009-03-26
US8067269B2 (en) 2011-11-29
US20080224173A1 (en) 2008-09-18
KR20080074892A (en) 2008-08-13
SG131803A1 (en) 2007-05-28
CN101351887A (en) 2009-01-21

Similar Documents

Publication Publication Date Title
KR102327745B1 (en) Semiconductor device and manufacturing method thereof
TWI333278B (en) Group iii nitride bases flip-chip integrated circuit and method for fabricating
US8067269B2 (en) Method for fabricating at least one transistor
US9064928B2 (en) Growth of multi-layer group III-nitride buffers on large-area silicon substrates and other substrates
CA2769940A1 (en) Island matrixed gallium nitride microwave and power switching transistors
DE112019007477T5 (en) SEMICONDUCTOR DEVICE AND MANUFACTURING METHOD FOR SEMICONDUCTOR DEVICE
US20150162448A1 (en) Integrated circuit device with power gating switch in back end of line
CN112420817A (en) Semiconductor devices and methods
CN104485313A (en) Semiconductor device with a plurality of semiconductor chips
KR101841631B1 (en) High electron mobility transistor and fabrication method thereof
TWI588955B (en) Method for forming III-V semiconductor structure using multiple substrates and semiconductor device fabricated by using the same
DE102014104103A1 (en) Method and substrate for thick III-N epitaxial layers
CN106170866A (en) FET transistors on III‑V material structures with substrate transfer
US10020244B2 (en) Polymer via plugs with high thermal integrity
WO2011051500A1 (en) Method for fabricating semiconductor wafers for the integration of silicon components with hemts, and appropriate semiconductor layer arrangement
EP1661179A1 (en) Active area bonding compatible high current structures
US20150097290A1 (en) COMPOSITE METAL TRANSMISSION LINE BRIDGE STRUCTURE FOR MONOLITHIC MICROWAVE INTEGRATED CIRCUITS (MMICs)
CN113964119A (en) semiconductor element
DE102016221746B4 (en) Wafer for a power transistor and power transistor
CN115732555B (en) Nitride semiconductor device, interconnection structure and manufacturing method thereof
CN112993027A (en) Semiconductor structure and forming method thereof
CN105702653B (en) Reliable and robust electrical contact
US6958288B2 (en) Semiconductor device and manufacturing method thereof
CN118448457A (en) Gallium nitride-based vertical semiconductor component with structured intermediate layer
JPH07153841A (en) Semiconductor device and its manufacture

Legal Events

Date Code Title Description
WWE Wipo information: entry into national phase

Ref document number: 200680039046.8

Country of ref document: CN

121 Ep: the epo has been informed by wipo that ep was designated in this application
DPE1 Request for preliminary examination filed after expiration of 19th month from priority date (pct application filed from 20040101)
ENP Entry into the national phase

Ref document number: 2008536553

Country of ref document: JP

Kind code of ref document: A

WWE Wipo information: entry into national phase

Ref document number: 12091036

Country of ref document: US

NENP Non-entry into the national phase

Ref country code: DE

WWE Wipo information: entry into national phase

Ref document number: 2006784267

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 1012/MUMNP/2008

Country of ref document: IN

Ref document number: 1020087011945

Country of ref document: KR