WO2002046821A1 - Micropositioning device - Google Patents

Micropositioning device Download PDF

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Publication number
WO2002046821A1
WO2002046821A1 PCT/SE2001/002642 SE0102642W WO0246821A1 WO 2002046821 A1 WO2002046821 A1 WO 2002046821A1 SE 0102642 W SE0102642 W SE 0102642W WO 0246821 A1 WO0246821 A1 WO 0246821A1
Authority
WO
WIPO (PCT)
Prior art keywords
intermediate part
acceleration unit
contact surface
clamping elements
acceleration
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/SE2001/002642
Other languages
French (fr)
Inventor
Håkan OLIN
Fredrik Althoff
Krister Svensson
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.)
Nanofactory Instruments AB
Original Assignee
Nanofactory Instruments AB
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 Nanofactory Instruments AB filed Critical Nanofactory Instruments AB
Priority to EP01999851A priority Critical patent/EP1340112B1/en
Priority to AU2002224304A priority patent/AU2002224304A1/en
Priority to JP2002548496A priority patent/JP3776084B2/en
Priority to DE60132713T priority patent/DE60132713T2/en
Priority to US10/433,575 priority patent/US6917140B2/en
Publication of WO2002046821A1 publication Critical patent/WO2002046821A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • G—PHYSICS
    • G02—OPTICS
    • G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B21/00—Microscopes
    • G02B21/32—Micromanipulators structurally combined with microscopes
    • B—PERFORMING OPERATIONS; TRANSPORTING
    • B82—NANOTECHNOLOGY
    • B82Y—SPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y35/00—Methods or apparatus for measurement or analysis of nanostructures
    • G—PHYSICS
    • G01—MEASURING; TESTING
    • G01Q—SCANNING-PROBE TECHNIQUES OR APPARATUS; APPLICATIONS OF SCANNING-PROBE TECHNIQUES, e.g. SCANNING PROBE MICROSCOPY [SPM]
    • G01Q10/00—Scanning or positioning arrangements, i.e. arrangements for actively controlling the movement or position of the probe
    • G01Q10/04—Fine scanning or positioning
    • H—ELECTRICITY
    • H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02N—ELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00—Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/0095—Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing combined linear and rotary motion, e.g. multi-direction positioners
    • H—ELECTRICITY
    • H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02N—ELECTRIC MACHINES NOT OTHERWISE PROVIDED FOR
    • H02N2/00—Electric machines in general using piezoelectric effect, electrostriction or magnetostriction
    • H02N2/02—Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing linear motion, e.g. actuators; Linear positioners ; Linear motors
    • H02N2/021—Electric machines in general using piezoelectric effect, electrostriction or magnetostriction producing linear motion, e.g. actuators; Linear positioners ; Linear motors using intermittent driving, e.g. step motors, piezoleg motors
    • H02N2/025—Inertial sliding motors
    • H—ELECTRICITY
    • H01—ELECTRIC ELEMENTS
    • H01J—ELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J2237/00—Discharge tubes exposing object to beam, e.g. for analysis treatment, etching, imaging
    • H01J2237/20—Positioning, supporting, modifying or maintaining the physical state of objects being observed or treated
    • H01J2237/202—Movement
    • H01J2237/20264—Piezoelectric devices

Definitions

  • This invention relates to an improved device for micropositioning of an object, especially for use in a microscope, such as a TE (transmission electron microscope) , an SPM (scanning probe microscope) or the like .
  • a microscope such as a TE (transmission electron microscope) , an SPM (scanning probe microscope) or the like .
  • a technique of carrying out such moving involves an inertia-type motor, according to the above description, in which excitation of a piezoelectric tube causes an extension of the same and a corresponding movement of an object connected therewith, whereupon the piezoelectric tube is very rapidly retracted as the excitation ceases, and owing to moment of inertia in the system, the object that is to be moved then stays in the position where it was located when the piezoelectric tube was in its excited position.
  • a device of the above type is described in, for example, K.
  • This publication describes a device for micropositioning in a scanning tunnel microscope, comprising both a sample and a sharp scanning tip.
  • the position of the sharp scanning tip relative to the sample is controlled by means of two concentric piezoelectric tubes, the inner tube being used for scanning of the sharp scanning tip and the outer tube being used for inertia movement of the sample.
  • the construction also comprises a positioning unit including two parts, a first part, which is fixedly connected to the outer tube, and a second part, which holds the sample.
  • the second part is slidingly arranged on the first part, the sliding surface being located in a plane which is not perpendicular to the sharp scanning tip.
  • displacements between these two parts occur as the acceleration exceeds the limit of the static friction between the parts.
  • the two parts are arranged in such manner that, when sliding towards each other in said sliding surface, the sample arranged on the second part is moved so as to be closer or further away from the prod while at the same time the actual sample surface is continuously held perpendicular to the sharp scanning tip.
  • This construction is very compact and has a number of desirable properties, such as a low noise level.
  • the construction is complicated and comprises two piezoelectric elements.
  • a micropositioning device of a simpler design is therefore desirable, which has a short mechanical loop, to reduce the mechanical noise in the form of vibrations in the system.
  • a simpler design of the system further contributes to reducing the risk that dirt and other external interference reduces or fully eliminates the function of the inertia-type motor.
  • the above prior-art construction is particularly adapted to scanning tunnel microscopy (STM) , and a more general device for use in connection with e.g. scanning probe microscopy (SPM) and other applications is desirable.
  • an object of the present invention is to accomplish a micropositioning device, having a simple design as well as a general, compact and stable construction.
  • a micropositioning device of the type described above wherein said intermediate part has a first end, being attached to said acceleration unit, and a second end, being provided with an essentially circumferential contact surface, and in that said object is provided with clamping elements, whereby said clamping elements are adapted to clamp around said contact surface of said intermediate part in order to hold the object in relation to the intermediate part merely by the clamping force and the frictional force exerted by said clamping elements upon said contact surface.
  • said attachment between the acceleration unit and the intermediate part is releasable.
  • said attachment between the acceleration unit and the intermediate part is releasable.
  • the clamping elements of the object are removably clamped around said contact surface of the intermediate part . This enables an easy exchange of the object, as well as, or instead of the intermediate part.
  • said acceleration unit comprises a tube, or the like, formed of a piezoelectric material, which provides a simple and well-tested mechanism for obtaining rapid acceleration and retardation movements.
  • the intermediate part is electrically isolated from the piezoelectric tube by means of an isolating attachment part.
  • the object, its contact elements and the intermediate part constitute an uninterrupted electric conductive path. This construction enables an effective discharge of the object, for example by connecting the conductive path to a ground line.
  • the contact surface of the intermediate part is an at least partially spherical surface. Consequently, the object is freely movable under the action of forces, and is rotatable relative to the intermediate part in all directions.
  • the contact elements of the object consist of several sliding rods protruding from the object body and preferably, said sliding rods are essentially parallel and arranged along the circumference of the object body.
  • This embodiment further enables the object to be freely displaceable towards and away from the piezoelectric tube 1 as well as being rotatable in all directions.
  • at least one of said sliding rods is provided with a stopper. This prevents the object from being displaced too far in the z-direction and consequently loose its contact with the intermediate part and fall off.
  • the object is preferably formed as a holder for a measurement sample or the like.
  • the fact that the object is a sample holder and not the sample itself enables the object to be formed for ultimate contact with the intermediate object and, at the same time, to constitute an expedient holder for a sample or a probe.
  • Fig 1 is a schematic perspective view of an embodiment of the invention. Description of preferred embodiments
  • FIG. 1 One embodiment of a micropositioning device in accordance with the invention is shown in fig 1.
  • This embodiment comprises a tube 1 of a piezoelectric material, which constitutes an acceleration unit.
  • the outer circumferential surface of the tube 1 is divided into four electrically separated segments la-Id (Id not shown) , which extend in the longitudinal direction of the tube 1 and each hold an angle segment of the circumferential surface of the tube 1 corresponding to about 25% of the total extent.
  • Each segment is, with the aid of electric connecting means (not shown) , connected with a wave generator, and the segments la, lb, lc and Id can be controlled independently of each other.
  • an attachment part 3b of an electrically isolating material is arranged, said attachment part 3b being provided with an opening 3b' .
  • said opening is essentially centered with the longitudinal axis of the piezoelectric tube 1.
  • a connection part of an electrically conductive material is provided.
  • a first end of said connection part is adapted to be fixedly connected with said attachment part 3b, in this case entered into the opening 3b' of the attachment part 3b, and a second end is provided with an essentially circumferential contact surface 3a, in this case an essentially spherical surface (see fig 1) , similar to a ball joint.
  • connection part When in its mounted position, the connection part projects from the piezoelectric tube 1 in the longitudinal direction of the piezoelectric tube 1. Further, the distal end of the spherical contact surface 3a is cut of, in order to form an essentially plane surface enabling a compact micropositioning device, as described hereinafter. Together, said connection part and said attachment part 3b forms an intermediate part 3. J > t- t H 1 ⁇ *
  • CD ⁇ rt rt ⁇ > SD H- ⁇ Hi SD rt 3 J ⁇ ⁇ ⁇ - SD ⁇ - ⁇ SD XI ⁇ * ⁇ 3 tr TS C Q ⁇ tr tr ⁇
  • the object in this embodiment is movable and controllable in three dimensions.
  • the distal end of the spherical contact surface 3a is cut off, in order to form an essentially plane surface, facing the object (see fig 1) .
  • the object 5 is provided with a plane surface on which said protruding clamping elements 4' are arranged, said surface facing the corresponding plane surface of the intermediate part 3.
  • This .embodiment has major advantages regarding applicability, due to the fact that the connections between the intermediate part 3 and the piezoelectric tube 1 as well as between the intermediate part 3 and the clamping elements 4' are releasable. This allows for easy replacement of all parts included in the micropositioning device.
  • the object 4 (The sample holder) may be replaced for an object with a different sample holder device 5, in order to adjust the device for a new experiment.
  • the intermediate part may be replaced for a new one, if scratches or the like appear on the contact surface, deteriorating and disturbing the free movement of the clamping elements 4' on said contact surface 3a.
  • bent rods that more or less encompass the contact surface 3a, providing a ball joint like connection are possible.
  • Such a construction does not however have a natural movability in the z-direction, but this may be arranged by means of a motor or a sliding engagement between for example the connection part and the attachment part 3b of the intermediate part.
  • the piezoelectric tube which is used in the embodiment described above, can be replaced by, for example, a stepping motor, which can cause sufficiently high acceleration of the positioning unit.
  • the piezoelectric element may have other shapes than the tube shape described herein, and may for example have a rectangular shape. However, in that case two or more connected piezoelectric elements may be needed in order to provide maneuverability in three dimensions.
  • the attachment part 3b or the intermediate part 3 may be attached to the inside or the outside of the piezoelectric tube 3, like in Fig. 1, but can also be slidingly arranged in or on the outer surface of the piezoelectric tube 3, in order to facilitate an additional movement possibility in the z-direction.
  • the number of clamping elements is variable, and the shape of these clamping elements is not limited to the rod shape shown in fig 1.
  • the clamping elements may for example be made of strips of sheet metal, arched elements or the like.
  • the shape of the object essential for the invention and the object may therefor more or less be freely adapted to a desired application.
  • all clamping elements described above are of a resilient type, it is possible to use a number of spaced- apart non-resilient elements.

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  • Physics & Mathematics (AREA)
  • Chemical & Material Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • Analytical Chemistry (AREA)
  • Radiology & Medical Imaging (AREA)
  • Nanotechnology (AREA)
  • Health & Medical Sciences (AREA)
  • General Health & Medical Sciences (AREA)
  • Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
  • Engineering & Computer Science (AREA)
  • Optics & Photonics (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • General Electrical Machinery Utilizing Piezoelectricity, Electrostriction Or Magnetostriction (AREA)
  • Length Measuring Devices With Unspecified Measuring Means (AREA)
  • Machine Tool Units (AREA)
  • Medicines That Contain Protein Lipid Enzymes And Other Medicines (AREA)
  • Control Of Position Or Direction (AREA)
  • Prostheses (AREA)
  • Motorcycle And Bicycle Frame (AREA)
  • Micromachines (AREA)
  • Die Bonding (AREA)
  • Fluid-Damping Devices (AREA)

Abstract

This invention relates to a device for micropositioning of an object (4), e.g. for use in a microscope. The device comprises an acceleration unit (1) and an intermediate part (3), connecting said acceleration unit (1) with said object (4). The position of the object relative to the acceleration unit (1) is variable at high acceleration or retardation of said acceleration unit (1), owing to mechanical inertia of the object (4). Further, the intermediate part (3) has a first end (3'), being attached to said acceleration unit (1), and a second end (3'), being provided with an essentially circumferential contact surface (3a), and the object (4) is provided with clamping elements (4'). These clamping elements (4') are adapted to clamp around said contact surface (3a) of said intermediate part (3) in order to hold the object (4) in relation to the intermediate part (3) merely by the clamping force and the frictional force exerted by said clamping elements (4') upon said contact surface (3a).

Description

MICROPOSITIONING DEVICE
Technical field of the invention
This invention relates to an improved device for micropositioning of an object, especially for use in a microscope, such as a TE (transmission electron microscope) , an SPM (scanning probe microscope) or the like .
Background art
In many fields there is a need for positioning of objects with great accuracy. This is most important, for example in a scanning probe microscope, SPM, in which a sample and a probe must be moved towards each other before starting a scanning. A technique of carrying out such moving involves an inertia-type motor, according to the above description, in which excitation of a piezoelectric tube causes an extension of the same and a corresponding movement of an object connected therewith, whereupon the piezoelectric tube is very rapidly retracted as the excitation ceases, and owing to moment of inertia in the system, the object that is to be moved then stays in the position where it was located when the piezoelectric tube was in its excited position. A device of the above type is described in, for example, K. Svensson, F. Althoff and H. Olin, "A compact inertial slider STM" , Meas . Sci. Techn. , 8, 1360-1362 (1997). This publication describes a device for micropositioning in a scanning tunnel microscope, comprising both a sample and a sharp scanning tip. The position of the sharp scanning tip relative to the sample is controlled by means of two concentric piezoelectric tubes, the inner tube being used for scanning of the sharp scanning tip and the outer tube being used for inertia movement of the sample. The construction also comprises a positioning unit including two parts, a first part, which is fixedly connected to the outer tube, and a second part, which holds the sample. The second part is slidingly arranged on the first part, the sliding surface being located in a plane which is not perpendicular to the sharp scanning tip. When applying, for example, a serrated waveshape to the piezoelectric element, displacements between these two parts occur as the acceleration exceeds the limit of the static friction between the parts. The two parts are arranged in such manner that, when sliding towards each other in said sliding surface, the sample arranged on the second part is moved so as to be closer or further away from the prod while at the same time the actual sample surface is continuously held perpendicular to the sharp scanning tip. This construction is very compact and has a number of desirable properties, such as a low noise level. However the construction is complicated and comprises two piezoelectric elements. A micropositioning device of a simpler design is therefore desirable, which has a short mechanical loop, to reduce the mechanical noise in the form of vibrations in the system. A simpler design of the system further contributes to reducing the risk that dirt and other external interference reduces or fully eliminates the function of the inertia-type motor. Furthermore the above prior-art construction is particularly adapted to scanning tunnel microscopy (STM) , and a more general device for use in connection with e.g. scanning probe microscopy (SPM) and other applications is desirable.
Object of the invention
Consequently, an object of the present invention is to accomplish a micropositioning device, having a simple design as well as a general, compact and stable construction. Summary of the invention
According to the invention, these and other objects are achieved by a micropositioning device of the type described above, wherein said intermediate part has a first end, being attached to said acceleration unit, and a second end, being provided with an essentially circumferential contact surface, and in that said object is provided with clamping elements, whereby said clamping elements are adapted to clamp around said contact surface of said intermediate part in order to hold the object in relation to the intermediate part merely by the clamping force and the frictional force exerted by said clamping elements upon said contact surface. This construction enables a stable and compact micropositioning device with a simple design, which is easy to manufacture.
Preferably, said attachment between the acceleration unit and the intermediate part is releasable. This enables a simple exchange of the intermediate part, if a differently shaped intermediate part is wanted in an application, or if the intermediate part is damaged or worn out. Further, according to a preferred embodiment, the clamping elements of the object are removably clamped around said contact surface of the intermediate part . This enables an easy exchange of the object, as well as, or instead of the intermediate part.
Preferably, said acceleration unit comprises a tube, or the like, formed of a piezoelectric material, which provides a simple and well-tested mechanism for obtaining rapid acceleration and retardation movements. Suitably, the intermediate part is electrically isolated from the piezoelectric tube by means of an isolating attachment part. In this way, the high voltage needed to operate the piezoelectric tube is effectively isolated from the other parts of the construction, avoiding unwanted charging of the object or other parts of the device. Preferably, the object, its contact elements and the intermediate part constitute an uninterrupted electric conductive path. This construction enables an effective discharge of the object, for example by connecting the conductive path to a ground line.
According to a preferred embodiment the contact surface of the intermediate part is an at least partially spherical surface. Consequently, the object is freely movable under the action of forces, and is rotatable relative to the intermediate part in all directions.
Conveniently, the contact elements of the object consist of several sliding rods protruding from the object body and preferably, said sliding rods are essentially parallel and arranged along the circumference of the object body. This embodiment further enables the object to be freely displaceable towards and away from the piezoelectric tube 1 as well as being rotatable in all directions. Preferably, at least one of said sliding rods is provided with a stopper. This prevents the object from being displaced too far in the z-direction and consequently loose its contact with the intermediate part and fall off.
Finally, the object is preferably formed as a holder for a measurement sample or the like. The fact that the object is a sample holder and not the sample itself enables the object to be formed for ultimate contact with the intermediate object and, at the same time, to constitute an expedient holder for a sample or a probe.
Brief description of the drawing
The invention will now be described in more detail with reference to a preferred embodiment, which is illustrated in the accompanying drawing.
Fig 1 is a schematic perspective view of an embodiment of the invention. Description of preferred embodiments
One embodiment of a micropositioning device in accordance with the invention is shown in fig 1. This embodiment comprises a tube 1 of a piezoelectric material, which constitutes an acceleration unit. The outer circumferential surface of the tube 1 is divided into four electrically separated segments la-Id (Id not shown) , which extend in the longitudinal direction of the tube 1 and each hold an angle segment of the circumferential surface of the tube 1 corresponding to about 25% of the total extent. Each segment is, with the aid of electric connecting means (not shown) , connected with a wave generator, and the segments la, lb, lc and Id can be controlled independently of each other. In one end of the piezoelectric tube 1, an attachment part 3b of an electrically isolating material is arranged, said attachment part 3b being provided with an opening 3b' . When said attachment part 3b is placed in the end of the piezoelectric tube 1, said opening is essentially centered with the longitudinal axis of the piezoelectric tube 1. Further, a connection part of an electrically conductive material is provided. A first end of said connection part is adapted to be fixedly connected with said attachment part 3b, in this case entered into the opening 3b' of the attachment part 3b, and a second end is provided with an essentially circumferential contact surface 3a, in this case an essentially spherical surface (see fig 1) , similar to a ball joint. When in its mounted position, the connection part projects from the piezoelectric tube 1 in the longitudinal direction of the piezoelectric tube 1. Further, the distal end of the spherical contact surface 3a is cut of, in order to form an essentially plane surface enabling a compact micropositioning device, as described hereinafter. Together, said connection part and said attachment part 3b forms an intermediate part 3. J > t- t H1 μ*
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Φ μ- H* 3 3* 3 Hi 0 X φ O Hi 3 ϋ 0 ; 3 3 " Ti 3 3 SD H* 0 tr μ- μ- *< 3 Hi 3 3" ~ 0 μ-
CQ Ω Φ tr Φ Φ rt LQ Hi rt 0 rt Ω Ti tr SD T3 Φ rt Hi SD SD φ LQ Φ tr 0 Ω μ- Hi Φ
3 Hi 3 CQ X rt rt Φ 3 Hi CD Φ μ- TJ Φ 3 0 Hi Φ rt 3 ϋ* rt * ISl 3 Φ 3 tr 0 N
H* 0 Φ φ Hi Ω 3 3' 3 φ φ Φ H μ- 0 O r→ ^Q 03 rt Hi ^ T3 μ- O SD 3 Φ f Ti o rt TJ 3 rt Hj μ- Φ Φ ω 3 CQ LQ 3 ft 3 μ- < CQ Φ μ- μ- 3 μ- 3 rt 3 Φ φ x 0 rt 3 Hi φ
CQ 0 rt μ- rt μ- rt Ti 3 Φ Φ ft μ- μ- rt SD Φ SD 3 Φ 3" SD X r→ μ- Ω 3 ^ rt 3 0 h-1 ω CQ 0 Ω Φ Ti 0 0 CQ 0 Φ ft 0 U 3 3 tr Φ ft LQ ft Φ W rf Φ 3 Ω Φ Φ ^ 0 < φ μ- μ- Hi rt ft μ- rt 3 3 3 μ- SD Hi H1 LQ Ω φ 0 μ- 3 μ- Φ Ω IQ 3 Φ Hi μ- Ω
3 rt rt μ- φ tr H ft rt SD φ rt 3 Hi SD 0 φ Hi SD 3 3 rt ii Ti Φ ft rt μ- 3- rt O TJ N Φ 0 tr μ- 03 rt rt rt $, rt •> 0 rt <! t→ ii Ω LQ 03 Hi rt 03 μ- !-■ μ- ii rt 0 3 tr 3 0 0 Hi Hi » 3 φ 3 3J SD 3- rt Φ rt rt Φ Φ φ μ- Ω μ- μ- - - φ 2! Φ Ω 3 μ-
3 3 rt φ SD CQ Φ LQ 0 ii Φ < Φ 3^ Φ μ- 3^ 3 3 Ω Φ rt 0 Ω μ- tsi tr 3 0 iQ Ω ii μ- μ- l-1 CQ 0 μ* Hi Ti 3 Φ Φ 3 0 Φ TJ φ φ rt 3J 3 03 Hi 0 Φ LQ 3
3 3 SD Ω rt φ μ- 3 Ω Ω SD μ- 0 - Ti 3 SD 3 3 μ- φ Φ rt 0 Φ 3 rt Ω 3 rt μ- IQ ii I-* Hi μ- Ω ft Φ -. ^ rt Hj 3 tr μ- rt H 0 Hi rt rt o H 03 3 Ω tr Hi 3
3 Φ SD 0 0 rt φ Ω " rt U^ SD φ 0 Φ 0 tr rt CQ 3 SD Ω Ti tr 1 Φ 3 Φ tr tr Q ft 3 ii 3 f 03 Φ φ 3 tS! rt rt Hi -_I. 0 SD rt 3- Φ φ 3 0 Ω 0 0 rt φ φ
Φ SD Ti Ω μ- 0 μ- ft 0 ω 0 Ω 0 SD 3 Φ 0 H 0 μ- SD Φ 3 3 rt < Hi Φ 3
0 <! Hi μ- Φ Ω Ω ft μ- T! - Hi rt 0 Φ I-1 Hi rt Ω Ω Hi 3 3 ft μ1 LQ φ Hi μ- ft *
Hi μ- H. 3 rt Ω φ SD ft μ- Ti I-1 3 tr rt Ω rt Hi LQ LQ φ ft μ- 3 rt 3 μ-
Ω SD LQ 3 tr n* 3 Hi SD φ SD rt rt TJ Φ SD Φ . 3 tr rt 0 Φ rt Hi Ω LQ - 3 3 rt Φ 3 3 Φ 3 Hi 0 Φ ISl 3 3' O 0 Ω Ω SD Hi Φ 3 H Hi 0 SD μ- tr Φ LQ 0
3* LQ Φ ft tr ∞ Hi 0 Φ 3 CQ rt Ω 3 0 HI CD Φ Ω 0 Hi Ti 3 ^ rt rt Φ ii
Φ SD φ H1 SD φ - I-1 £, φ SD SD μ- H Φ ft tr ■<; 0 Φ Hi H SD μ- 3 3' O X 3
CQ ft Φ rt Ω . rt Φ SD (-* Ti O Hi rt μ- *-■ 0 tr O Ω 0 ft CQ 3 tr Φ rt rt O tr
0 3 3" Ω SI - Hi <! Φ Ti tr ft Φ Ω Φ Φ φ 3 •> ι_ι. tr SD Φ 3 ii 3 Φ 3" Φ rt Φ tr CQ 0 Φ Φ Φ s! 3J Φ rt Φ Ω ii l_l. ω H X Ω CQ μ- Φ ι_ι. 3 Φ • Ω Hi 03 Φ 3 μ-
SD 3 3 3' μ- rt 0 φ 3 rt SD rt rt μ- 3 Ω Φ ft rt φ 3" Φ μ* 3 Hi CD 0 03 -J φ μ- rt Ω Φ Φ Ω Ti 3 £. Hi Ti Ω rt 0 3 rt Φ 3 m rt Ω φ X SD Ω rt 3 μ- 3 3
Ω ft rt Q μ-1 ϋ 3 3* μ- 3 tr μ- ϋ rt 3J rt tr μ- 3 μ- LQ rt Hi 3 rt rt tr 3 3 TI 03 0 T! rt - SD SD φ Φ Φ Ω μ- Φ μ- Φ 0 CQ CQ rt *=. Φ Ti Φ μ- SD SD Hi Hi μ- 3 0 Ti
Φ Φ φ> 3 rt ii ii N X ii SD rf*> 0 3 μ- SD 0 . CQ 0 3 <! 3 3 3 μ- Φ ft Hi *-■ . X - TJ μ- Φ Φ 0 Ω φ rt rt Ti 3 μ* 0 tr Hi μ- Hi CQ Φ LQ 3 M φ 0 μ- μ- CQ -* μ- 3 rt CQ Φ μ- SD 3 Φ ϋ μ- μ- 3 Φ Ω SD Φ SD → SD μ- I-1 φ Φ rt 03 μ- Hi rt Φ
Hi rt 3 3 LQ 3 3 rt CQ tr Φ φ μ- •> Q 03 ^ 3 μ- ϋ O ^ 03 M 0 rt 3 0 tr ft
Φ φ 3 μ- LQ ii μ* φ Φ Φ CQ → N 0! μ- 0 μ- Ω 3 SD ft φ μ- 3 Hi 0 Φ ft Φ • Hi 3 rt Ω ft rt - Φ SD 0 rt rt Hi ft Φ rt 3 3' Hi rt rt 3 rt 3 ■≤
SD φ Hi 0 μ- 03 rr tr LQ rt φ SD 3J 3^ φ 0 Ω μ- rt Ω rt μ- Hi 3" tr 3 3J rt Φ TJ μ- rt CQ CQ • 0 Hi 3 Hi Φ μ- 3 μ- Ω φ rt CQ μ- 3J <! tr Φ 0 iQ 0 3 φ Φ t μ- rt μ- Φ μ- ii Ω LQ μ- μ- m Φ <! φ 3* SD 3 3J ft PJ φ Φ Φ tr 3 rt Φ Φ CD φ tr
< LQ ft rt Ω Φ 3 Ω tr M 3 Φ Ω μ- 3 Φ Ti SD 3 tr X H μ- X N μ- N φ 3 Φ 3 Φ rt 3 φ CQ rt rt φ 3 Hi μ- rt μ- Φ Ω Φ Hj SD rt 3 rt rt ft 0 ft
Φ 0 S O CQ rt CD 3 3 rt Hi <! μ- 3 TJ φ Ω 0 3 rt Φ rt φ tr μ- Φ ft 3 φ φ μ- rt 3 0 CD 3 μ- SD 3 •> SD Ti μ* 0 μ- φ 3 Ω μ- <! Ti SD rt £, Φ 3 rt ϋ Φ rt 3 μ- tr t→ H
0 rt Hi Φ Φ rt μ- tr μ- TJ SD Ω ft <J tr φ 3 rt Φ Φ ft Hi 3 Φ μ- CQ Hj Φ o φ Hi ω Hi 3" ft Φ SD 3 ^ rt ^ Φ N 3 3^ ϋ Φ CQ 3 Hi t→ 3 ' ' μ- Φ H Ω φ rt rt Ω φ Φ 3 μ- μ- 3J rt M o rt CD 3 Φ 3 3 3 3 0 Ω μ- rt i
3' - h-1 φ tr ii 3 Φ 0 Φ 3 μ- rt 0 φ Φ Φ 0 Φ rt CQ rt 3 rt 03 rt H! Φ
Φ £ Φ SD X φ Φ LQ ft Hi tr • Φ t f-1 ft 3 ft rt tr 0 CD μ- M μ- tr μ- 3 tr 3 Ω 3 l→ φ Φ ft φ φ SD φ μ- 3' Φ Ti <! Φ 0 0 Φ Ω rt μ- TJ Hi Φ ft SD 3 Ti • Hi Ω μ- 3 3 SD Φ Hi Φ Φ 3 Hi 3
Ω μ- 0 Φ μ- rt μ- SD 1 • rt 3 rt rt SD Φ l-1 LQ rt rt s; tr 3 H ft 3 μ- rt μ- SD Φ TJ ft ; rt rt 3 3 3
LQ LQ < 3* Hi μ- rt 0 μ- tr tr tr tr <! SD φ Ω 3' Hi ft φ Φ Φ Φ
SD 0 Φ CQ
intermediate part 3 in the return motion. By combining different segments, the object in this embodiment is movable and controllable in three dimensions.
As described above, the distal end of the spherical contact surface 3a is cut off, in order to form an essentially plane surface, facing the object (see fig 1) . Further the object 5 is provided with a plane surface on which said protruding clamping elements 4' are arranged, said surface facing the corresponding plane surface of the intermediate part 3. This construction results in a compact construction in the z-direction, without deteriorating the manoeuvrability of the construction.
This .embodiment has major advantages regarding applicability, due to the fact that the connections between the intermediate part 3 and the piezoelectric tube 1 as well as between the intermediate part 3 and the clamping elements 4' are releasable. This allows for easy replacement of all parts included in the micropositioning device. For example, the object 4 (The sample holder) may be replaced for an object with a different sample holder device 5, in order to adjust the device for a new experiment. Further, the intermediate part may be replaced for a new one, if scratches or the like appear on the contact surface, deteriorating and disturbing the free movement of the clamping elements 4' on said contact surface 3a. Another possibility is to replace the intermediate part 3 and/or the object 4, in order to adjust the clamping force and friction between these parts in the micropositioning device, for example by using an intermediate part with a spherical contact surface 3a with slightly larger radius than before. In this way the ease of movement between the intermediate part 3 and the object 4 may be set for a specific application. The above embodiments are only stated for exemplification and are not intended to limit the scope of the invention. A number of modifications and constructional changes, which are obvious to those skilled in the art, can, of course, be made without departing from the basic inventive idea as defined in claim 1. For instance, it can be mentioned that the clamping elements 4' may have different shapes, and not necessarily have to be straight rods, as in the above embodiment. For example, bent rods that more or less encompass the contact surface 3a, providing a ball joint like connection are possible. Such a construction does not however have a natural movability in the z-direction, but this may be arranged by means of a motor or a sliding engagement between for example the connection part and the attachment part 3b of the intermediate part.
Moreover, the piezoelectric tube, which is used in the embodiment described above, can be replaced by, for example, a stepping motor, which can cause sufficiently high acceleration of the positioning unit. Further, the piezoelectric element may have other shapes than the tube shape described herein, and may for example have a rectangular shape. However, in that case two or more connected piezoelectric elements may be needed in order to provide maneuverability in three dimensions.
Further, the attachment part 3b or the intermediate part 3 may be attached to the inside or the outside of the piezoelectric tube 3, like in Fig. 1, but can also be slidingly arranged in or on the outer surface of the piezoelectric tube 3, in order to facilitate an additional movement possibility in the z-direction. The number of clamping elements is variable, and the shape of these clamping elements is not limited to the rod shape shown in fig 1. The clamping elements may for example be made of strips of sheet metal, arched elements or the like. Nor is the shape of the object essential for the invention and the object may therefor more or less be freely adapted to a desired application. Finally,' although all clamping elements described above are of a resilient type, it is possible to use a number of spaced- apart non-resilient elements.

Claims

1. A device for micropositioning of an object (4), e.g. for use in a microscope, said device comprising an acceleration unit (1) and an intermediate part (3) , connecting said acceleration unit (1) with said object (4) , the position of which relative to the acceleration unit (1) being variable at high acceleration or retardation of said acceleration unit (1) , owing to mechanical inertia of the object (4), chara c t e r i z e d in that said intermediate part (3) has a first end (3'), being attached to said acceleration unit (1), and a second end (3"), being provided with an essentially circumferential contact surface (3a) , and in that said object (4) is provided with clamping elements (4'), whereby said clamping elements (4') are adapted to clamp around said contact surface (3a) of said intermediate part (3) in order to hold the object (4) in relation to the intermediate part (3) merely by the clamping force and the frictional force exerted by said clamping elements (4') upon said contact surface (3a) .
2. A device as claimed in claim 1, wherein said attachment between the acceleration unit (1) and the intermediate part (3) is releasable.
3. A device as claimed in claim 1 or 2 , wherein said clamping elements (4') of the object (4) are removably clamped around said contact surface (3a) of the intermediate part (3) .
4. A device as claimed in any one of the preceding claims, wherein said acceleration unit (1) comprises a tube, or the like, formed of a piezoelectric material.
5. A device as claimed in claim 4, wherein the intermediate part (3) is electrically isolated from the piezoelectric tube (1) by means of an isolating attachment part (3b) .
6. A device as claimed in any of the preceding claims, wherein the object (4), its contact elements (4') and the intermediate part (3) constitutes an uninterrupted electric conductive path.
7. A device as claimed in any of the preceding claims, wherein the contact surface (3a) of the intermediate part (3) is an at least partially spherical surface.
8. A device as claimed in any of the preceding claims, wherein the contact elements (4') of the object consist of several sliding rods protruding from the object body.
9. A device as claimed in claim 8, wherein said sliding rods (4') are essentially parallel and arranged along the circumference of the object body.
10. A device as claimed in claim 9, wherein at least one of said sliding rods (4') is provided with a stopper
(4") .
11. A device as claimed in any of the preceding claims, wherein the object (4) is formed as a holder for a measurement sample (5) or the like.
PCT/SE2001/002642 2000-12-05 2001-12-03 Micropositioning device Ceased WO2002046821A1 (en)

Priority Applications (5)

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EP01999851A EP1340112B1 (en) 2000-12-05 2001-12-03 Micropositioning device
AU2002224304A AU2002224304A1 (en) 2000-12-05 2001-12-03 Micropositioning device
JP2002548496A JP3776084B2 (en) 2000-12-05 2001-12-03 Micro positioning device
DE60132713T DE60132713T2 (en) 2000-12-05 2001-12-03 MICRO POSITIONING DEVICE
US10/433,575 US6917140B2 (en) 2000-12-05 2001-12-03 Micropositioning device

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WO2006057300A1 (en) 2004-11-27 2006-06-01 Japan Advanced Institute Of Science And Technology Positioning mechanism and microscope using the same
CN113508235A (en) * 2019-02-01 2021-10-15 统雷有限公司 Piezoelectric braking device

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US8059346B2 (en) 2007-03-19 2011-11-15 New Scale Technologies Linear drive systems and methods thereof
EP3843120A1 (en) * 2019-12-23 2021-06-30 University of Vienna Sample holder for electron diffraction experiments with goniometer and contact cooling

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EP0292989A2 (en) * 1987-05-29 1988-11-30 Research Development Corporation Of Japan Apparatus and method for effecting fine movement by impact force produced by piezoelectric or electrostrictive element
US5229679A (en) * 1988-12-28 1993-07-20 Prima Meat Packers, Ltd. Microdrive apparatus
EP0599582A2 (en) * 1992-11-20 1994-06-01 Topometrix Scanning apparatus linearization and calibration system

Cited By (4)

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Publication number Priority date Publication date Assignee Title
WO2006057300A1 (en) 2004-11-27 2006-06-01 Japan Advanced Institute Of Science And Technology Positioning mechanism and microscope using the same
EP1826551A4 (en) * 2004-11-27 2010-04-14 Japan Adv Inst Science & Tech POSITIONING MECHANISM AND MICROSCOPE USING THE MECHANISM
CN113508235A (en) * 2019-02-01 2021-10-15 统雷有限公司 Piezoelectric braking device
CN113508235B (en) * 2019-02-01 2023-08-08 统雷有限公司 Piezoelectric braking device

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DE60132713D1 (en) 2008-03-20
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DE60132713T2 (en) 2009-02-12
EP1340112B1 (en) 2008-02-06
JP3776084B2 (en) 2006-05-17
US20040051424A1 (en) 2004-03-18
ATE385579T1 (en) 2008-02-15
EP1340112A1 (en) 2003-09-03
SE0004471D0 (en) 2000-12-05
US6917140B2 (en) 2005-07-12
SE0004471L (en) 2002-06-06
JP2004515769A (en) 2004-05-27

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