CA2631600C

Method for forming an electronic paper display

Abstract

Methods form a multi-color electrophoretic display. The methods include providing microcapsules, wherein the microcapsules have an electrostatic charge, and wherein the microcapsules comprise, a shell that is transparent and a display medium within the shell, wherein the display medium is comprised of either (a) at least two sets of differently colored particles in a substantially clear fluid, or (b) at least one set of colored particles in a differently colored fluid. The methods include transferring the microcapsules to a substrate, wherein the electrostatic charge of the microcapsules attracts the microcapsules to the substrate, wherein a display layer of microcapsules is formed on the substrate. The methods include positioning a conductive substrate adjacent to the substrate, wherein the substrate is located between the display layer and the conductive substrate. In use, the conductive substrate applies an electric field to the display layer, and wherein the sets of particles within each microcapsule in the display layer are movable within the microcapsule by the electric field.

CA2631600C, drawing sheet 1
Sheet 1 of 7

Term

Projected expiry 20 May 2028.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Projected expiry

25 claims: 4 independent, 21 dependent

  1. 1
    CA 02631600 2011-09-22 WHAT IS CLAIMED IS:1. A method for forming a multi-color electrophoretic display, the method comprising: providing microcapsules, wherein the microcapsules have an electrostatic charge, and wherein the microcapsules comprise: a shell that is transparent;and a display medium within the shell, wherein the display medium is comprised of either (a) at least two sets of differently colored particles in a substantially clear fluid, or (b) at least one set of colored particles in a differently colored fluid;transferring the microcapsules to a substrate, wherein the electrostatic charge of the microcapsules attracts the microcapsules to the substrate, wherein a display layer of microcapsules is formed on the substrate;positioning a conductive substrate adjacent to the substrate, wherein the substrate is located between the display layer and the conductive substrate, wherein the conductive substrate applies an electric field to the display layer, and wherein the sets of particles of each microcapsule in the display layer are movable within the microcapsule by the electric field;and softening the microcapsules of the display layer after being transferred to the substrate, wherein gaps between the microcapsules or the microcapsules and the substrate are reduced, and/or applying pressure to the microcapsules of the display layer after being transferred to the substrate, wherein gaps between the microcapsules or the microcapsules and the substrate are reduced.
  2. 4
    The method according to any one of claims 1 to 3, wherein at least one of the microcapsules have a surface charging control agent or a flow aid agent.
  3. 5
    The method according to any one of claims 1 to 4, wherein transferring the microcapsules comprises applying the microcapsules to the substrate by ballistic aerosol marking. CA 02631600 2011-09-22
  4. 6
    The method according to any one of claims 1 to 5, wherein providing the microcapsules comprises suspending the charged particles in a dielectric fluid prior to transferring the charged particles to the substrate and wherein transferring the microcapsules comprises contacting the fluid with the substrate.
  5. 7
    The method according to any one of claims 1 to 6, wherein a photoreceptor, positioned adjacent to the substrate, receives the microcapsules and moves the microcapsules to the substrate.
  6. 8
    The method according to any one of claims 1 to 7 , wherein providing the microcapsules comprises contacting the microcapsules with a charged roll device prior to transferring the microcapsules to the substrate.
  7. 9
    The method according to any one of claims 1 to 8, wherein the microcapsules are transferred to the substrate such that each microcapsule of the display layer defines a subpixel of a pixel of the display.
  8. 11
    The method according to any one of claims 1 to 10, wherein the fluid of the display medium is a dielectric liquid.
  9. 13
    A method for forming a multi-color electrophoretic display, the method comprising:providing microcapsules, wherein the microcapsules comprise: a shell that is transparent;and a display medium within the shell, wherein the display medium is comprised of either (a) at least two sets of differently colored particles in a substantially clear fluid, or (b) at least one set of colored particles in a differently colored fluid;transferring the microcapsules to a substrate, wherein the microcapsules on the substrate define a display layer of microcapsules on the substrate;positioning a conductive substrate adjacent to the substrate, wherein the substrate is located between the display layer and the conductive substrate, wherein the conductive substrate applies an electric field to the display layer, wherein the sets CA 02631600 2011-09-22 of particles of each microcapsule in the display layer are movable within the microcapsule by the electric field;and softening the microcapsules of the display layer after being transferred to the substrate, wherein gaps between the microcapsules or the microcapsules and the substrate are reduced, and/or applying pressure to the microcapsules of the display layer after being transferred to the substrate, wherein gaps between the microcapsules or the microcapsules and the substrate are reduced.
  10. 15
    The method according to claims 13 or 14, further comprising:drying the microcapsules to form a dry powder of microcapsules that is movable to the substrate.
  11. 16
    The method according to any one of claims 13 to 15, wherein transferring the microcapsules comprises moving the microcapsules onto the substrate by a xerographical printing process, liquid xerography, ballistic aerosol marking or ion-charging development.
  12. 17
    The method according to any one of claims 13 to 16, further comprising:forming a protective layer on the display layer wherein the display layer is located between the protective layer and the substrate.
  13. 18
    The method according to any one of claims 13 to 17, further comprising:electrostatically charging the microcapsules to form charged particles that are movable to the substrate.
  14. 19
    The method according to any one of claims 13 to 18, further comprising:mixing carrier particles with the microcapsules to form a developer that is movable to the substrate.
  15. 20
    A method for forming a multi-color electrophoretic display, the method comprising:electrostatically charging microcapsules to form charged particles, wherein each microcapsule comprises: CA 02631600 2011-09-22 a shell that is transparent, wherein a surface of the shell contains a charge control agent or a flow aid agent;a display medium within the shell, wherein the display medium is comprised of either (a) at least two sets of differently colored particles in a substantially clear fluid, or (b) at least one set of colored particles in a differently colored fluid;transferring the charged particles of microcapsules to a substrate, wherein the microcapsules on the substrate define a display layer of microcapsules on the substrate;positioning a conductive substrate adjacent to the substrate, wherein the substrate is located between the display layer and the conductive substrate, wherein the conductive substrate applies an electric field to the display layer, and wherein the sets of particles of each microcapsule in the display layer are movable within the microcapsule by the electric field;and softening the microcapsules of the display layer after being transferred to the substrate, wherein gaps between the microcapsules or the microcapsules and the substrate are reduced, and/or applying pressure to the microcapsules of the display layer after being transferred to the substrate, wherein gaps between the microcapsules or the microcapsules and the substrate are reduced.
  16. 23
    The method according to any one of claims 20 to 22, wherein each microcapsule of the display layer defines a subpixel of a pixel for an image, wherein the subpixel for each pixel displays white or a color.
  17. 24
    The method according to any one of claims 20 to 23, wherein transferring the charged particles comprises moving the charged particles to the substrate by a xerographical printing process, liquid xerography, ion-charging development or ballistic aerosol marking.
  18. 25
    An image development device that develops images according to any one of claims 1 to 24.
Independent claims18