Chinese Journal of Liquid Crystals and Displays, Volume. 36, Issue 7, 947(2021)
Improvement of reflectivity of vertical alignment liquid crystal on silicon
[1] [1] BHOWMIK A K. Recent developments in virtual-reality and augmented-reality technologies [J]. Information Display, 2017, 33(6): 20-32.
[2] [2] HAAS G. Microdisplays for wearable augmented reality— OLED vs LED based systems [J]. SID Symposium Digest of Technical Papers, 2019, 50(1): 713-716.
[3] [3] CHEN R, HUANG Y G, LI J, et al. High-frame-rate liquid crystal phase modulator for augmented reality displays [J]. Liquid Crystals, 2019, 46(2): 309-315.
[4] [4] CHEN H W, GOU F W, WU S T. Submillisecond-response nematic LC for wearable displays [J]. SID Symposium Digest of Technical Papers, 2017, 48(1): 377-380.
[5] [5] ANDERSON J E, CHEN C, BOS P J. Fast VAN LCoS microdisplay [J]. SID Symposium Digest of Technical Papers, 2005, 36(1): 1366-1369.
[6] [6] FAN CHIANG K H, CHEN S H, WU S T. Diffraction effect on high-resolution liquid-crystal-on-silicon devices [J]. Japanese Journal of Applied Physics, 2005, 44(5R): 3068-3072.
[7] [7] FAN-CHIANG K H, WU S T, CHEN S H. Fringing-field effects on high-resolution liquid crystal microdisplays [J]. Journal of Display Technology, 2005, 1(2): 304-313.
[8] [8] PENG J, WANG S Y, WANG C J, et al. Improvement on fringe field in VA mode LCOS panels [J]. SID Symposium Digest of Technical Papers, 2005, 36(1): 1294-1297.
[9] [9] ZHANG Y L, WANG B, CHUNG D B, et al. Reflective polarization independent LC phase modulator with polymer wall [J]. SID Symposium Digest of Technical Papers, 2005, 36(1): 1178-1181.
[10] [10] CUYPERS D,DE SMET H, VAN CALSTER A. VAN LCOS microdisplays: a decade of technological evolution [J]. Journal of Display Technology, 2011, 7(3): 127-134.
[11] [11] PENG F L, GOU F W, CHEN H W, et al. A submillisecond-response liquid crystal for color sequential projection displays [J]. Journal of the Society for Information Display, 2016, 24(4): 241-245.
[12] [12] ZHU X Y, WU S T. Normally black reflective twisted-nematic cell for microdisplay application [J]. Journal of Applied Physics, 2004, 95(12): 7660-7664.
[13] [13] XING Y F, GUO Z B, LI Q. Reflective blue phase liquid crystal displays with double-side concave-curved electrodes [J]. Liquid Crystals, 2018, 45(4): 507-512.
[14] [14] CHEN Y, PENG F L, WU S T, et al. A vertically-aligned LCOS with submillisecond response time [J]. SID Symposium Digest of Technical Papers, 2013, 44(1): 898-901.
[15] [15] CHEN C H. Liquid crystal on silicon (LCoS) [M]//KRISS M. Handbook of Digital Imaging. West Sussex: John Wiley & Sons, Ltd., 2015: 1-20.
[16] [16] SHIN H K, KIM K H, YOON T H, et al. Vertical alignment nematic liquid crystal cell controlled by double-side in-plane switching with positive dielectric anisotropy liquid crystal [J]. Journal of Applied Physics, 2008, 104(8): 084515.
[17] [17] FAN CHIANG K H, WU S T, CHEN S H. Fringing field effect of the liquid-crystal-on-silicon devices [J]. Japanese Journal of Applied Physics, 2002, 41(7R): 4577-4585.
[18] [18] CHIANG K H F, ZHU X Y, WU S T, et al. Eliminating fringing field effects of vertically aligned liquid-crystal-on-silicon by using circularly polarized light [J]. SID Symposium Digest of Technical Papers, 2005, 36(1): 1290-1293.
[19] [19] IWAMOTO Y, IIMURA Y. Transmittance enhancement for randomly aligned liquid crystal displays with circular polarizers [J]. Japanese Journal of Applied Physics, 2002, 41(12A): L1383-L1385.
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LI Wen-juan, GUO Yu-qiang, MA Hong-mei, SUN Yu-bao. Improvement of reflectivity of vertical alignment liquid crystal on silicon[J]. Chinese Journal of Liquid Crystals and Displays, 2021, 36(7): 947
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Received: Nov. 12, 2020
Accepted: --
Published Online: Sep. 4, 2021
The Author Email: LI Wen-juan (lwj_hebut@163.com)