Method to Make LCOS Oxide Alignment Layer by Offset Print
20180113336 ยท 2018-04-26
Assignee
Inventors
- Ming Zhang (Fremont, CA, US)
- Yin Qian (Milpitas, CA, US)
- Libo Weng (San Jose, CA, US)
- Oray Orkun Cellek (Mountain View, CA, US)
- Dyson Hsin-Chih Tai (San Jose, CA, US)
- Lequn LIU (San Jose, CA, US)
- Dominic Massetti (Seal Beach, CA, US)
Cpc classification
G02F1/1337
PHYSICS
International classification
G02F1/1337
PHYSICS
Abstract
An alignment layer for a liquid crystal on silicon (LCOS) display includes a nano-particle layer. In a particular embodiment the nano-particle layer includes a lower nano-layer and an upper nano-layer, each formed onto oxide layers of the LCOS display. In a more particular embodiment, the lower nano-layer and the upper nano-layer are offset printed onto the oxide layers.
Claims
1. A method of manufacturing a liquid crystal display, said method comprising: providing a substrate of said liquid crystal display; applying a liquid crystal alignment pattern to said substrate using a lithography process; and assembling said substrate into said liquid crystal device with said liquid crystal alignment layer adjacent a liquid crystal layer of said liquid crystal device.
2. The method of claim 1, wherein said liquid crystal display is a liquid crystal on silicon (LCOS) device.
3. The method of claim 2, wherein said substrate is a reflective backplane of said LCOS device.
4. The method of claim 2, wherein said substrate is a transparent electrode of said LCOS device.
5. The method of claim 1, further comprising: providing a second substrate of said liquid crystal display; applying a liquid crystal alignment pattern to said second substrate using a lithography process; and assembling said second substrate into said liquid crystal device with said liquid crystal alignment layer of said second substrate adjacent said liquid crystal layer of said liquid crystal device.
6. The method of claim 5, wherein: said substrate is a reflective backplane of said liquid crystal display; and said second substrate is a transparent electrode of said liquid crystal display.
7. The method of claim 1, wherein said lithography process is a nano offset printing process.
8. The method of claim 7, wherein said nano offset printing process comprises: providing a template; patterning a nano-pattern onto said template; adhering a first plurality of nano-particles onto said nano-pattern on said template; transferring said first plurality of nano-particles to said first substrate to form said liquid crystal alignment layer on said first substrate, said liquid crystal alignment pattern corresponding to said nano-pattern.
9. The method of claim 8, wherein said nano pattern includes a plurality of parallel lines having a pitch smaller than 50 nanometers (nm).
10. The method of claim 9, wherein said nano-pattern includes a plurality of parallel lines having a pitch no greater than 20 nm.
11. The method of claim 8, wherein said nano-particles are made from materials having a dielectric constant greater than the dielectric constant of polyimide.
12. The method of claim 8, wherein said nano-particles include at least one of Silicon, Germanium, Silicon-Germanium alloy, Carbon-nanotubes, Silicon-Carbon alloy, Germanium-Carbon alloy, Silicon Nitride, Germanium Oxide, or Silicon Oxide.
13. The method of claim 8, wherein said nano-particles are made from materials having a dielectric constant greater than or equal to 7.
14. A liquid crystal display device, comprising: a substrate; a printed liquid crystal alignment layer on said substrate; and a liquid crystal layer adjacent said printed liquid crystal alignment layer.
15. The liquid crystal display device of claim 14, wherein said liquid crystal device is a liquid crystal on silicon (LCOS) device.
16. The liquid crystal display device of claim 15, wherein said substrate is a reflective backplane.
17. The liquid crystal display device of claim 15, wherein said substrate is a component of a transparent electrode.
18. The liquid crystal display device of claim 14, further comprising: a second substrate disposed on an opposite side of said liquid crystal layer as said first substrate; a second liquid crystal alignment layer printed on a surface of said second substrate adjacent said liquid crystal layer.
19. The liquid crystal display device of claim 18, wherein: said first substrate is a reflective backplane; and said second substrate is a transparent electrode.
20. The liquid crystal display device of claim 14, wherein said printed liquid crystal alignment layer includes a pattern of nano-particles.
21. The liquid crystal display device of claim 20, wherein said pattern includes a plurality of parallel lines having a pitch smaller than 50 nanometers.
22. The liquid crystal display device of claim 21, wherein said pitch of said plurality of parallel lines is less than or equal to 20 nanometers.
23. The liquid crystal display device of claim 20, wherein said nano-particles include at least one of Silicon, Germanium; Silicon-Germanium alloy, Carbon-nanotubes, Silicon-Carbon alloy, Germanium-Carbon alloy, Silicon Nitride, Germanium Oxide, or Silicon Oxide particles.
24. The liquid crystal display device of claim 20, wherein said printed liquid crystal alignment layer has a dielectric constant greater than or equal to the dielectric constant of polyimide.
25. The liquid crystal display device of claim 20, wherein said printed liquid crystal alignment layer has a dielectric constant greater than or equal to 7.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The present invention is described with reference to the following drawings, wherein like reference numbers denote substantially similar elements:
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DETAILED DESCRIPTION
[0022] The present invention overcomes the problems associated with the prior art, by providing an improved alignment layer for a liquid crystal display (LCD), which can be manufactured at low cost and high throughput. In the following description, numerous specific details are set forth (e.g., specific processes, dimensions, materials, etc.) in order to provide a thorough understanding of the invention. Those skilled in the art will recognize, however, that the invention may be practiced apart from these specific details. In other instances, details of well-known LCD practices (e.g., microchip fabrication techniques, LCD assembly, etc.) and components have been omitted, so as not to unnecessarily obscure the present invention.
[0023] The relative dimensions of the layers and elements depicted in the drawings are not drawn to scale. Rather, the drawings are intended to convey a clear understanding of various aspects of the invention.
[0024]
[0025] Integrated circuitry layer 104, insulating layer 106, pixel mirrors 108 and oxide layer 110 are formed on silicon substrate 102 using know microchip fabrication techniques and, together, form a reflective backplane of LCoS display 100. Integrated circuitry layer 104 includes electronic elements (e.g. transistors) that impart functionality to LCOS display 100. Pixel mirrors 108 are electrically coupled to integrated circuitry layer 104 through a plurality of vias formed in insulating layer 106.
[0026] Transparent common electrode 116 is a thin conductive layer (e.g., indium-tin-oxide) formed on transparent substrate 114 (e.g., a glass plate). Oxide layer 118 is a silicon dioxide layer formed on transparent common electrode 116. Together, transparent substrate 114, transparent common electrode 116, and oxide layer 118 form a transparent cover of LCoS display 100. A gasket 120 (only a portion shown) surrounds liquid crystal layer 112 and fixes the reflective backplane of LCoS display 100 to the transparent cover of LCoS display 100, thereby retaining liquid crystal layer 112 therebetween.
[0027] Liquid crystal (LC) alignment layers 122 and 124 are printed on oxide layers 110 and 118, respectively, and are in direct contact with liquid crystal layer 112. More particularly, liquid crystal alignment layers 122 and 124 are formed by an offset lithography (printing) process. In this example embodiment, LC alignment layers 122 and 124 are nano-patterns formed by a nano offset printing process that will be described in greater detail below. Nano-layers 122 and 124 determine a resting alignment of LC layer 118, which can be configured based on certain details of the pattern formed by nano-layers 122 and 124. Forming LC alignment layer 122 and/or LC alignment layer 124 using an offset lithography process provides important advantages over alignment layers of the prior art. The advantages include, but are not limited to, more uniform alignment layers, smaller pitch of the alignment pattern, less chance of damaging underlying layers, and improved electrical performance of the alignment pattern material.
[0028] LCOS display 100 modulates incident light based on control signals received from a controller (not shown) and reflects the light back toward optics, a screen, or a viewer. In response to the control signals, integrated circuitry layer 104 asserts a voltage on each of pixel mirrors 108. Depending on the relative voltages asserted on each of pixel mirrors 108 and transparent common electrode 116, an electric field is created across LC layer 118. The electric field alters the alignment of the liquid crystals of LC layer 118, which, in turn, alters the polarization orientation of incident light. Pixel mirrors 108 reflect the incident light, the liquid crystals alter the polarization orientation of the reflected light again, and the modulated light passes through a polarized analyzer filter (not shown). Based on the alignment of the liquid crystals through which the light passes and on the polarization orientation of the polarized filter, a pixel of light (i.e. the light reflected by one of pixel mirrors 108) will appear bright, dark, or at some intermediate brightness. Because each of pixel mirrors 108 can have an independent voltage asserted thereon, light is spatially modulated and an image can be generated.
[0029]
[0030] Liquid crystal alignment layers 122 and 124 include a pattern of nano-particles adhered to oxide layers 110 and 118, respectively. In this example embodiment, the nano-particles are carbon nano-tubules, arranged in a predetermined LC alignment pattern. Alternate nano-particles including, but are not limited to, silicon, germanium, silicon-germanium alloy, silicon-carbon alloy, germanium-carbon alloy, silicon nitride, germanium oxide, silicon oxide particles, and/or combination thereof can be used to form LC alignment layers 122 and 124. Additionally, the operation of LCOS display 100 can be improved based on the dielectric features of the nano-particles used to form LC alignment layers 122 and 124. The strength of the electric field between global electrode 112 and local electrodes 108 depends on the dielectric constants of the materials, through which the field passes. Displays with LC alignment layers made with materials having a high dielectric constant, require less power to operate and have quicker response times than traditional LCOS displays. LC alignment layers with a dielectric constant greater than the dielectric constant of polyimide provide an improvement over known LC displays with a polyimide rub layer. A wide-range of particles with high dielectric constants can be used to create LC alignment layers 122 and 124. Particles, with a dielectric constant greater than 7 (e.g. germanium particles) provide a significant improvement over alignment layers of the prior art.
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[0032] Upper LC alignment layer 124 (
[0033] In the drawings of this disclosure, LC alignment layer 122 and LC alignment layer 124 are shown to have an identical horizontal placement and angular orientation. However, this representation is only for the sake of clear explanation and easy understanding of the drawings. As indicated above, LC alignment layers 122 and 124 can be arranged in any offset or angular relationship with respect to one another, depending on the requirements of the particular application. Various LC devices might require varying alignment patterns, and the methods described in this disclosure enable a manufacturer to print a nano-particle LC alignment layer in any 2D pattern at a resolution achievable by the state of technology at that time.
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[0040] This process of printing LC alignment layer 122 onto oxide layer 110 using a nano offset printing process saves cost and increases throughput, because template 400 can be used repeatedly. In addition, the printing process decreases the chances of damaging the underlying layers.
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[0047] This process of printing LC alignment layer 124 onto oxide layer 118 using a nano offset printing process, of course, provides the same advantages described above with respect to the printing of LC alignment layer 122.
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[0055] The description of particular embodiments of the present invention is now complete. Many of the described features may be substituted, altered or omitted without departing from the scope of the invention. For example, the liquid crystal alignment layers and methods of producing them can be employed in liquid crystal display devices other than reflective LCoS display devices. As another example, alternate printing methods can be substituted for the nano printing processes disclosed herein. These and other deviations from the particular embodiments shown will be apparent to those skilled in the art, particularly in view of the foregoing disclosure.