US3734724A - Developed image transfer - Google Patents

Developed image transfer Download PDF

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Publication number
US3734724A
US3734724A US00865996A US3734724DA US3734724A US 3734724 A US3734724 A US 3734724A US 00865996 A US00865996 A US 00865996A US 3734724D A US3734724D A US 3734724DA US 3734724 A US3734724 A US 3734724A
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US
United States
Prior art keywords
image
potential
transfer
electrical
toner
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.)
Expired - Lifetime
Application number
US00865996A
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English (en)
Inventor
W York
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.)
Eastman Kodak Co
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Eastman Kodak Co
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Publication date
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Publication of US3734724A publication Critical patent/US3734724A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

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Classifications

    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03GELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
    • G03G7/00Selection of materials for use in image-receiving members, i.e. for reversal by physical contact; Manufacture thereof
    • G03G7/006Substrates for image-receiving members; Image-receiving members comprising only one layer
    • G03G7/0066Inorganic components thereof
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82YSPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y15/00Nanotechnology for interacting, sensing or actuating, e.g. quantum dots as markers in protein assays or molecular motors
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03GELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
    • G03G13/00Electrographic processes using a charge pattern
    • G03G13/14Transferring a pattern to a second base
    • G03G13/16Transferring a pattern to a second base of a toner pattern, e.g. a powder pattern
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03GELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
    • G03G13/00Electrographic processes using a charge pattern
    • G03G13/26Electrographic processes using a charge pattern for the production of printing plates for non-xerographic printing processes
    • G03G13/28Planographic printing plates
    • G03G13/283Planographic printing plates obtained by a process including the transfer of a tonered image, i.e. indirect process
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03GELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
    • G03G7/00Selection of materials for use in image-receiving members, i.e. for reversal by physical contact; Manufacture thereof
    • G03G7/0093Image-receiving members, based on materials other than paper or plastic sheets, e.g. textiles, metals

Definitions

  • Elements useful in the electrophotographic process commonly comprise an electrically conductive support bearing a stratum including a photoconductive insulating layer which has an electrical resistivity substantially greater in the dark than in light actinic thereto.
  • Such elements can be used in electrophotographic processes, for example, by first adapting the element in the dark to obtain a uniformly high resistivity in the photoconductive insulating layer, and electrostatically charging the element in the dark to obtain a relatively high potential which may be either negative or positive in polarity. The element can then be exposed to a light pattern which lowers the resistivity and thereby the charge density of the illuminated areas imagewise in proportion to the intensity of illumination incident upon the illuminated areas. An electrostatic latent image is thus obtained.
  • Visible images can be formed from the electrostatic latent image in any convenient manner, such as by dusting with 40 finely divided, fusible toner particles which bear an electrostatic charge opposite that remaining on the surface of the photoconductive insulating layer. Thereafter, the toner particles can be transferred to a receiver and fused thereto thus providing a permanent image.
  • a further object of this invention is to provide novel electrophotographic transfer procedures which are operated at low electrical potentials thereby minimizing the possibility of electrical breakdown of the photoconductor.
  • an electrophotographic element in conjunction with a charged receiver.
  • an electrostatic latent image is formed on a transparent electrophotographic element and the latent image developed by known techniques.
  • a receiver member is then biased to an electric potential such that the member has a polarity of electrical charge which is the same as the charge on the toner.
  • the charged re DC and image-bearing element are placed in face to face contact, the repelling potential on the receiving member terminated, a low electrical transfer potential is applied which has a polarity opposite that of the toner and the element is given a uniform exposure.
  • the electrophotographic elements used in the present invention are comprised of a transparent support such as poly(ethylene terephthalate) cellulose acetate or the like photographic film supports, typically having coated thereon a transparent conductive coating such as high vacuum evaporated nickel, cuprous iodide, a conducting polymer as described, for example, in US. Pat. No. 3,007,901 and similar materials.
  • the conducting support is in turn overcoated with a photoconductive layer typically comprised of a binder and an organic photoconductor.
  • a photoconductive layer typically comprised of a binder and an organic photoconductor.
  • polymeric photoconductors can be used without the need for a separate binder.
  • organic photoconductors can be used in the elements of this invention. Useful materials would include organic amine photoconductors which have a common structural feature of at least one amino group such as those described in US.
  • Polarylalkane photoconductors are also particularly useful in the present invention. Such photoconductors are described in US. Pat. No.
  • Photoconductors of this latter type include leuco bases of di-or triarylrnethane dye salts, 1,1,l-triarylalkanes wherein the alkane moiety has at least two carbon atoms, and tetraaryl methanes, there being substituted an amino group On at least one of the aryl groups attached to the alkane and methyl moieties of the latter two classes of photoconductors which are non-leuco base materials. 4-diarylamino-substituted chalcones are also useful in elements according to the present invention.
  • the following table comprises a partial listing of US. patents disclosing further organic photoconductive compounds and compositions which are also useful.
  • the transparent electrophotographic element prepared with materials such as those described above is then used in the formation of an image.
  • images can be produced by any of the now well-known electrographic processes such as the xerographic process.
  • an electrophotographic element is held in the dark and given a blanket electrostatic charge by placing it under a corona discharge. This uniform charge is retained by the photoconductive layer of the element because of the substantial dark insulating properties of the layer, i.e., the low conductivity of the layer in the dark.
  • the electrostatic charge formed on the surface of the photoconductive layer is then selectively dissipated from the surface by imagewise exposure to light by means of a conventional exposure operation such as, a contact printing technique, lens projection of an image and the like to thereby form an electrostatic latent image in the photoconductive layer.
  • Exposing the surface in this manner forms a pattern of electrostatic charge by virtue of the fact that light energy striking the photoconductor causes the electrostatic charge in the light-exposed areas to be conducted away from the surface in proportion to the intensity of the illumination in a particular area.
  • the charge pattern produced by exposure is then developed by suitable well-known development techniques such as by treatment with a medium comprising electrostatically responsive marking particles having optical density.
  • the electrostatically responsive developer particles can be in the form of a dust or powder of a pigment or they can be in the form of a pigment in a resinous binder, commonly termed a toner.
  • the toner material can be applied to the element bearing the charge pattern by any of a variety of means.
  • One typical development means is cascade development wherein toner and carrier material therefor such as glass beads, resin particles, iron balls, etc., are poured over or otherwise contacted with the element bearing the electrostatic latent image.
  • magninque Another useful means is the magnetic brush development techninque which involves a developer mix prepared of toner in admixture with suitable magnetically responsive carrier such as magnetic iron oxide, powdered iron, etc. After development of the electrostatic latent image, a particulate developed image remains on the photoconductive element.
  • the developed image on the photoconductive element can readily be transferred to a suitable lithographic plate for use it; formation of a lithographic master.
  • an electrically conductive receiver sheet is provided for receiving the developed image.
  • This sheet is typically comprised of a thin metal sheet such as aluminum.
  • a thin metal sheet such as aluminum.
  • metal sheets, foils or foil laminates could be used.
  • Other useful metals would include tin, nickel, chromium, stainless steel, copper and the like.
  • the metal receiver sheet is in the range of from about 0.005 to about 0.025 inches in thickness.
  • the receiver sheet ultimately becomes a lithographic printing master.
  • Such receiver sheets are commercially available and in general, comprise a thin metal sheet, which may have a water-receptive surface.
  • Such metal plates are typically made of aluminum which may be surface-treated to provide water-receptive surfaces as are necessary in lithographic printing.
  • Nonmetallic receiver sheets can also be used in this invention such as a paper receiver having a conductive backing layer thereon.
  • a repelling potential is applied between the receiver and the conductive layer of the element such that the receiver has a polarity opposite that of the electrostatic charge on the surface of the electrophotographic element.
  • This repelling potential is typically in the range of from about 50 to 250 volts, positive or negative depending upon the charge on the toner material.
  • repelling potential is meant an electrical potential maintained between the image-bearing element and the receiver such that the receiver has a polarity the same as that of the charge on the toner material.
  • the repelling potential can also be described as an electrical potential between the two members referred to above such that the receiver has a polarity opposite that of the charge holding the toner on the image-bearing element.
  • the toner material is thus repelled from the receiver by means of this repellin potential.
  • the repelling potential is maintained until the receiver is positioned in intimate face to face contact with the developed image-bearing element and serves to prevent premature transfer until both elements are properly positioned.
  • the two members can be moved slightly in relation to one another while the repelling potential is applied without disrupting the developed image.
  • the repelling potential is turned off and a transfer potential is applied by, for example, simply reversing the polarity and increasing the magnitude of the potential. The resulting transfer potential is insufficient to cause electrical damage to the electrophotographic element.
  • This potential typically has a value of about 400 to 600 volts, positive or negative depending upon the original charge on the toner material.
  • the transparent element is given a flooding photorelease exposure through the support side thereof in order to discharge the electrostatic latent image forces holding the developed image in place.
  • This biasing potential is preferably continued until the receiving member is stripped away from the electrophotographic element.
  • This procedure results in virtually complete transfer of all toner carried on the electrophotographic element and in general, the images produced by this method are sharper than those produced by other procedures.
  • the sensitive element need not be transparent.
  • the voltages used in effecting the transfer in either instance can be widely varied but are of a magnitude insufficient to cause electrical damage to the electrophotographic element.
  • the image can be permanently fixed to the plate by simply heating the plate to cause fusion 5 the toner or m ki g p t c es, A ter fixst qn of the transferred image to the metal plate, the plate is generally treated with a conventional conversion solution such as an aqueous gum arabic-phosphoric acid solution which completely wets the non-image areas, thereby preventing ink from adhering thereto.
  • a conventional conversion solution such as an aqueous gum arabic-phosphoric acid solution which completely wets the non-image areas, thereby preventing ink from adhering thereto.
  • the sheet is then used as a lithographic printing master on a conventional offset printing press.
  • a control transfer is conducted in accordance with the following procedure.
  • a transparent electrophotographic element prepared from a conductive poly(ethylene terephthalate) film support having coated thereon an organic amine photoconductor in a polycarbonate binder is placed on a vacuum frame having an inserted glass window.
  • the photoconductor is charged to a uniform surface potential of -720 volts by means of a corona wire charger.
  • the charged element is then given an imagewise exposure through the support side to form an electrostatic latent image.
  • the latent image is developed using a magnetic brush developer mixture comprising a toner of carbon black in a polystyrene resin in admixture with a carrier containing ferromagnetic material.
  • the developer mix is applied to a hand-held magnet to form a small magnetic brush.
  • the magnetic brush is biased at 40 volts with respect to the conducting layer of the photoconductive element during development. This small bias potential has the effect of reducing the background on the photoconductive surface.
  • a Wrong-reading developed image is produced on the photoconductive element.
  • the developed image is transferred to a grained aluminum plate by electrically grounding the conductive layer of the element and pressing the aluminum plate carefully into contact while raising the potential of the aluminum plate to l kv. and separating the aluminum plate from the photoconductor.
  • the resulting right-reading powder image is heat-fused in an oven to give a hard durable black image.
  • This plate is then treated with a gum arabic-phosphoric acid solution at a pH of 3 to convert it to a useful lithographic plate.
  • EXAMPLE 2 The transfer of powder in Example 1 is sufficient to form a visible image; however, complete transfer of the developed image is not obtained. It appears that the residual charge in the image areas holds back a portion of the toner thereby preventing a complete transfer.
  • a similar developed image of an electrophotographic element is transferred by the following procedure. A grained aluminum plate is placed in face to face contact with the developed image-bearing element prepared as in Example 1. Next, the photoconductive layer is exposed through the transparent support to a white light flooding photorelease exposure. In this instance, an electrical bias potential of only 500 volts is needed to obtain transfer of the developed image. In this instance, the toner transfer is virtually complete. However, any inadvertent contact, sliding or relative motion between the electrophotographic element and the receiver member prior to application of the transfer or bias potential results in a poor quality image which has smeared areas.
  • EXAMPLE 3 In order to avoid smearing of the transferred image, the following procedure is conducted in accordance with this invention. A developed image is prepared on a transparent electrophotographic element in accordance with the procedures of Example 1. Next, a grained aluminum receiver sheet is provided and a repelling potential of +100 volts is applied to the aluminum plate prior to and until it is positioned in contact with the developed element for final transfer. At this time, the electrophotographic element is given a flooding photo-release exposure through the transparent support thereof and a transfer potential of S00 volts is applied to the aluminum plate. The plate is separated from the element while the transfer potential is still being applied.
  • the resultant image is considerably sharper than the images prepared as above and in general, there is much less tendency to smear the image during repeated transfers utilizing techniques of this example.
  • the final transferred image is then fused in an oven and the image-bearing aluminum plate is treated with a gum arabic-phosphoric acid solution at a pH of about 3 to render the non-image areas oleophobic.
  • the resultant lithographic master is then used in a standard lithographic offset press to form lithographic images. The quality of these images is very good.
  • the procedure of this example is repeated several times and quality images result with no apparent smearing.
  • the image exposure has been made through the transparent support of the photoconductive layer, but this is coincidental and not a necessary limiting condition.
  • the photoconductor is charged to an initial potential of 720 volts, but the exposing image is projected onto the front surface of the photoconductor.
  • the latent image is developed by magnetic brush and dry toner with a development bias of 40 volts applied to the brush.
  • a grained aluminum receiver sheet held at volts repelling potential is positioned in contact with the developed powder image.
  • the potential on the metal sheet is switched to the 500 volts transfer potential, while a flooding exposure is given through the base of the photoconductive layer to complete the transfer of the powder image to the metal sheet.
  • a heat-fusing step is given to fix the image.
  • the resultant image is sharp with good density. Substantially no toner is left on the photoconductive layer after transfer.
  • Example 5 The procedure of Example 4 is repeated on a similar, but opaque photoconductive element and without the use of a flooding exposure. The resultant image is sharp with good density; however, a slight amount of toner is left on the photoconductive layer.
  • a process as described in claim 1 wherein said electrical transfer potential has a magnitude of about 400 to 600 volts.
  • receiver member is a grained aluminum lithographic plate.
  • a process for forming a lithographic printing master comprising the steps of:
  • a process for forming a lithographic printing master comprising the steps of:
  • a process for transferring developed electrographic images comprising the steps of:

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Nanotechnology (AREA)
  • Health & Medical Sciences (AREA)
  • Textile Engineering (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • General Health & Medical Sciences (AREA)
  • Molecular Biology (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • Inorganic Chemistry (AREA)
  • Photoreceptors In Electrophotography (AREA)
  • Electrostatic Charge, Transfer And Separation In Electrography (AREA)
US00865996A 1969-10-13 1969-10-13 Developed image transfer Expired - Lifetime US3734724A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US86599669A 1969-10-13 1969-10-13

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Publication Number Publication Date
US3734724A true US3734724A (en) 1973-05-22

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US (1) US3734724A (fr)
BE (1) BE757461A (fr)
CA (1) CA955104A (fr)
FR (1) FR2065390A5 (fr)
GB (1) GB1330321A (fr)

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3891440A (en) * 1973-11-02 1975-06-24 Gte Sylvania Inc Process for fabricating a color cathode ray tube screen structure incorporating optical filter means therein
US4461563A (en) * 1982-10-22 1984-07-24 Xerox Corporation Copy sheet contamination prevention
US4736227A (en) * 1987-06-01 1988-04-05 Xerox Corporation Liquid ink transfer system
EP0364855A1 (fr) * 1988-10-13 1990-04-25 Océ-Nederland B.V. Méthode et appareil pour transférer une image de poudre, consistant en une poudre de développement chargée électrostatiquement, d'un support de formation d'image à un support de réception d'image
US5212526A (en) * 1991-11-27 1993-05-18 Xerox Corporation Process and apparatus for transferring and fusing an image to a recording medium
US5568228A (en) * 1994-12-14 1996-10-22 Eastman Kodak Company Image forming apparatus with controlled transfer
US5655183A (en) * 1994-12-14 1997-08-05 Eastman Kodak Company Image forming apparatus with a transfer station erase

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2785026B2 (ja) * 1989-01-10 1998-08-13 石原産業株式会社 着色金属板及びその製造方法

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3891440A (en) * 1973-11-02 1975-06-24 Gte Sylvania Inc Process for fabricating a color cathode ray tube screen structure incorporating optical filter means therein
US4461563A (en) * 1982-10-22 1984-07-24 Xerox Corporation Copy sheet contamination prevention
US4736227A (en) * 1987-06-01 1988-04-05 Xerox Corporation Liquid ink transfer system
EP0294123A3 (en) * 1987-06-01 1989-09-13 Xerox Corporation A liquid ink transfer system
EP0364855A1 (fr) * 1988-10-13 1990-04-25 Océ-Nederland B.V. Méthode et appareil pour transférer une image de poudre, consistant en une poudre de développement chargée électrostatiquement, d'un support de formation d'image à un support de réception d'image
US5212526A (en) * 1991-11-27 1993-05-18 Xerox Corporation Process and apparatus for transferring and fusing an image to a recording medium
US5568228A (en) * 1994-12-14 1996-10-22 Eastman Kodak Company Image forming apparatus with controlled transfer
US5655183A (en) * 1994-12-14 1997-08-05 Eastman Kodak Company Image forming apparatus with a transfer station erase

Also Published As

Publication number Publication date
GB1330321A (en) 1973-09-19
BE757461A (fr) 1971-03-16
CA955104A (en) 1974-09-24
FR2065390A5 (fr) 1971-07-23

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