Thin cell gap microdisplays with optimum optical properties
Abstract
A projection mode microdisplay includes a silicon substrate having disposed thereon a first alignment layer having a first alignment direction, and a cover substrate having disposed thereon a second alignment layer having a second alignment direction. A liquid crystal material having spacers disbursed therethrough is disposed between to maintain the cell gap which is about 1.2 microns. The first and second alignment directions form about a 27 degree twist angle. An electrode disposed on the cover substrate and the silicon substrate are connected to a control system that sequentially applies an electric field across the cell gap to control the orientation of the liquid crystal material. A retarder is disposed on the cover substrate and has an alignment direction that is at −38 degrees±5 degrees with respect to an x-axis of the display, wherein the liquid crystal material has a turn-on time no greater than 1.0 milliseconds and a turn-off time no greater than 4.0 milliseconds. The foregoing microdisplay has a contrast ratio of at least up to 2000:1, and a polarization conversion efficiency of at least 94%. A similar construction for a near-eye mode microdisplay utilizing a comparable thin cell gap can also be used.
Claims
exact text as granted — not AI-modifiedWhat is claimed is:
1 . A microdisplay, comprising:
a silicon substrate having disposed thereon a first alignment layer having a first alignment direction; a cover substrate having disposed thereon a second alignment layer having a second alignment direction, said alignment layers facing one another to form a cell gap; and a liquid crystal material disposed between said silicon substrate and said cover substrate, said first and second alignment directions having about a 27 degree+5 degree angle therebetween.
2 . The microdisplay according to claim 1 , further comprising:
a control system; an electrode disposed on said cover substrate, said electrode and said silicon substrate connected to said control system, wherein said control system sequentially applies an electric field across said cell gap to control the orientation of said liquid crystal material.
3 . The microdisplay according to claim 1 , wherein said first alignment direction is 53 degrees±5 degrees with respect to an x-axis of the display, and wherein said second alignment direction in+26 degrees±5 degrees with respect to the x-axis.
4 . The microdisplay according to claim 1 , wherein said cell gap is about 1.2 microns±0.2 microns.
5 . The microdisplay according to claim 4 , wherein said liquid crystal material has a plurality of spacers disbursed therethrough to maintain said cell gap.
6 . The microdisplay according to claim 1 , further comprising:
a retarder disposed on said cover substrate.
7 . The microdisplay according to claim 1 , wherein said retarder has an alignment direction that is at−38 degrees±5 degrees with respect to an x-axis of the display.
8 . The microdisplay according to claim 1 , wherein said liquid crystal material has a turn-on time no greater than 1.0 milliseconds and a turn-off time no greater than 4.0 milliseconds.
9 . The microdisplay according to claim 1 , wherein the microdisplay has a contrast ratio of greater than 400:1 at F#/1.0 with white light illumination.
10 . The microdisplay according to claim 1 , wherein the microdisplay has a polarization conversion efficiency of at least 94%.
11 . A microdisplay, comprising:
a silicon substrate having disposed thereon a first alignment layer having a first alignment direction; a cover substrate having disposed thereon a second alignment layer having a second alignment direction, said alignment layers facing one another to form a cell gap; and a liquid crystal material having spacers disbursed therethrough to maintain said cell gap, said material disposed between said silicon substrate and said cover substrate, said first and second alignment directions having about a 27 degree+5 degree angle therebetween; wherein said first alignment direction is 53 degrees+5 degrees with respect to an x-axis of the display, and wherein said second alignment direction in+26 degrees±5 degrees with respect to the x-axis; and wherein said cell gap is about 1.2 microns+0.2 microns.
12 . The microdisplay according to claim 11 , further comprising:
a retarder disposed on said cover substrate; and wherein said retarder has an alignment direction that is at−38 degrees±5 degrees with respect to the x-axis.
13 . The microdisplay according to claim 12 , wherein said liquid crystal material has a turn-on time no greater than 1.0 milliseconds and a turn-off time no greater than 4.0 milliseconds.
14 . The microdisplay according to claim 12 , wherein the microdisplay has a contrast ratio of at least up to 2000:1 and a polarization conversion efficiency of at least 94%.
15 . A microdisplay, comprising:
a silicon substrate having disposed thereon a first alignment layer having a first alignment direction; a cover substrate having disposed thereon a second alignment layer having a second alignment direction, said alignment layers facing one another to form a cell gap; and a liquid crystal material having spacers disbursed therethrough to maintain said cell gap, said material disposed between said silicon substrate and said cover substrate, said first and second alignment directions having about a 95 degree±3 degree angle therebetween.
16 . The microdisplay according to claim 15 , further comprising:
a control system; an electrode disposed on said cover substrate, said electrode and said silicon substrate connected to said control system, wherein said control system sequentially applies an electric field across said cell gap to control the orientation of said liquid crystal material.
17 . The microdisplay according to claim 16 , wherein said first alignment direction is+80 degrees∓5 degrees with respect to an x-axis of the display, and wherein said second alignment direction is−15 degrees±5 degrees with respect to the x-axis.
18 . A microdisplay, comprising:
a silicon substrate having disposed thereon a first alignment layer having a first alignment direction; a cover substrate having disposed thereon a second alignment layer having a second alignment direction, said alignment layers facing one another to form a cell gap; and a liquid crystal material disposed between said silicon substrate and said cover substrate, wherein said cell gap is less than about 1.4 microns.
19 . The microdisplay according to claim 18 , wherein said liquid crystal material has a switching time of no greater than 5.0 milliseconds and a contrast ratio of at least 100:1.Join the waitlist — get patent alerts
Track US2003053017A1 — get alerts on status changes and closely related new filings.
We store only your email — no account needed. See our privacy policy.