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LCI Publisher Universitaet Hamburg

Index Name

Crossland, W.A.

Similar Names

Crossland, William A.;   Crossland, William Alden

Co-authors

Ayliffe, P.J.;   Bayley, P.A.;   Birch, M.J.;   Bone, M.F.;   Chapman, J.;   Chittick, R.;   Choi, W.K.;   Chou, H.-H.;   Chu, D.P.;   Clapp, T.;   Clapp, T.V.;   Coates, D.;   Coker, T.;   Coker, T.M.;   Collings, N.;   Collington, J.R.;   Coomber, S.;   Coulson, I.;   Dames, M.P.;   Davey, A.B.;   Davey, A.V.;   Duffy, W.L.;   Fracasso, B.;   Georgiou, A.G.;   Gil Leyva, D.;   Gunn, P.;   Hannington, J.;   Henderson, C.D.;   Hughes, J.R.;   Jang, J.N.;   Jeziorska-Chapman, A.M.;   Kelly, Stephen M.;   Komarcevic, M.;   Kozlowski, D.;   Long, G.M.;   Manolis, I.G.;   Mears, R.J.;   Mias, S.;   Milne, W.I.;   Moore, J.;   Morrissy, J.H.;   Needham, B.;   Needham, Barbara;   New, N.;   Newport, A.C.;   Nishida, F.;   Perennes, F.;   Pivnenko, M.;   Rao, J.;   Redmond, M.M.;   Ross, P.W.;   Saunders, F.C.;   Scarr, R.W.A.;   Surguy, P.W.H.;   Tan, K.L.;   Towler, M.J.;   Trushkevych, O.;   Uche, C.;   Underwood, I.;   Vass, D.G.;   Vecht, A.;   Walker, C.J.;   Warr, S.T.;   Wilkinson, T.;   Wilkinson, T.D.;   Wu, Z.Y.;   Xu, H.;   Yu, T.C.B.;   Zhang, F.;   Zhang, Z.;   de Bougrenet de la Tocnaye, J.-L.

Publication Titles

1975: Birefringence in silicon monoxide films used for aligning liquid crystal layers
1976: Tilt angle measurements of nematic phases of cyano-biphenyls aligned by obliquely evaporated films
1977: Tilt angle measurements of nematic phases of cyano-biphenyl eutectic mixtures
1978: A variable tilt smectic A electro-optic effect giving stored colors
1978: Electrically induced scattering textures in smectic A phases and their electrical reversal
1985: Smectic dynamic scattering in laser-addressed liquid crystal projection displays
1987: Ferroelectric liquid crystal display capable of video line address times
1989: Evolutionary development of advanced liquid crystal spatial light modulators
1991: Potential and limitations of the electroclinic effect in device applications
1991: The "JOERS/Alvey" ferroelectric multiplexing scheme
1992: Active backplane spatial light modulators using chiral smectic liquid crystals
1993: Addressing requirements for chiral smectic liquid crystal active backplane spatial light modulators
1994: New applications for ferroelectric liquid crystals
1995: Electrohydrodynamic origin of striped texture in ferroelectric liquid crystal cells
1996: New reflective layer technologies for fast ferroelectric liquid crystal optically addressed spatial light modulators
1996: Optically accessed electronic memory
1996: Use of deformed helix ferroelectric liquid crystals in Fabry Perot etalons
1997: Deformed helix ferroelectric liquid crystal Fabry Perot etalons
1997: Resonant enhancement of low-contrast electro-optic effects
1998: A comparison of the efficiency and crosstalk of quaternary and binary phase-only holograms based on ferroelectric liquid crystals (FLC)
1998: Enhancement of SmA* liquid crystal electroclinic electro-optic effects using Fabry-Perot cavities at oblique incidence
1998: Enhancement of SmA* liquid crystal electroclinic electro-optic effects using resonated compound variable retarders
1998: Ferroelectric liquid crystal on silicon spatial light modulator designed for high-yield and low-cost fabrication. The fast bitplane SLM
1998: Narrow band 390 nm emitting phosphors for photoluminescent liquid crystal displays
1999: A simple method for optically enhancing the small electro-optical effects of fast switching electroclinic liquid crystals
2000: Control of the electro-optic bistability of some ferroelectric liquid crystals useful for binary phase optical modulators
2000: Fast switching electroclinic mixtures based on a series of chloroester homologues
2001: Optical comparator based on an FLC over silicon SLM
2002: Applications of Ferroelectric Liquid Crystal LCOS Devices
2002: Development of Large Capacity and Low-Crosstalk Holographic Switches Using LCOS Spatial Light Modulators
2002: Liquid Crystals in Telecommunications Systems
2002: Performance of UV-stable STN Mixtures for PL-LCDS
2002: Phase Modulation Time Dependence Measurement
2002: Telecommunications applications of LCOS devices
2002: UV-Transparent Nematics for PL-LCDs
2003: Liquid crystal materials and applications for the next generation of microdisplays
2004: Comparison Between Pixelated-Metal-Mirrored and Non-Mirrored Ferroelectric Liquid Crystal Oaslm Devices
2004: Electro-Optical Bistability in Ferroelectric Liquid Crystal Switching Devices for Use in Displays and Real-Time Holography
2004: Performance of UV-stable STN Mixtures for PL-LCDs
2004: Phase Modulation Time Dependence Measurement
2005: Hologram Optimisation Using Liquid Crystal Modelling
2005: Optical Studies of Non-linear Behaviour of Dye-doped Liquid Crystal Systems
2005: Pi-cells for Telecoms
2006: Phase modulation with the next generation of liquid crystal over silicon technology
2006: Single layer liquid crystal optically addressed spatial light modulators
2007: Effects of Electric-Field Shape and Frequency on Smectic Layer Rotation of Siloxane Ferroelectric Liquid Crystals
2007: Electroclinic effect in a chiral smectic C siloxane material
2007: Implementation of colorless shutter-based free-space optical interconnections using ferroelectric liquid-crystal spatial light modulators
2007: Layer rotation mechanism in the chiral smectic C phase
2009: Measurement of Dielectric Anisotropy of Some Liquid Crystals for Microwave Applications
2010: High quality assembly of liquid crystal on silicon (LCOS) devices for phase-only holography

Sources

19th Int. Liq. Cryst. Conf., Edinburgh, 2002, P745
19th Int. Liq. Cryst. Conf., Edinburgh, 2002, P756
19th Int. Liq. Cryst. Conf., Edinburgh, 2002, P95
19th Int. Liq. Cryst. Conf., Edinburgh, 2002, PL3
Appl. Opt., 28, 4740
Appl. Phys. Lett., 26, 598
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Appl. Phys. Lett., 90, 231902
Appl. Phys. Lett., 90, 252901
Displays, 6, 207
Displays, 8, 115
Ferroelectrics, 114, 101
Ferroelectrics, 122, 63
Ferroelectrics, 149, 361
Ferroelectrics, 181, 11
Ferroelectrics, 181, 129
Ferroelectrics, 181, 99
Ferroelectrics, 213, 219
Ferroelectrics, 213, 233
Ferroelectrics, 213, 257
Ferroelectrics, 213, 269
Ferroelectrics, 246, 61
Ferroelectrics, 278, 219
Ferroelectrics, 278, 227
Ferroelectrics, 312, 3
J. Appl. Phys., 84, 3827
J. Mater. Chem., 16, 3359
J. Phys. D, 10, L175
J. Phys. D, 11, 2025
J. Phys. D, 9, 2001
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Mol. Cryst. Liq. Cryst. A, 263, 325
Mol. Cryst. Liq. Cryst. A, 304, 329
Mol. Cryst. Liq. Cryst. A, 351, 305
Mol. Cryst. Liq. Cryst. A, 360, 17
Mol. Cryst. Liq. Cryst. A, 375, 1
Mol. Cryst. Liq. Cryst., 401, 57
Mol. Cryst. Liq. Cryst., 41, 151
Mol. Cryst. Liq. Cryst., 411, 79
Mol. Cryst. Liq. Cryst., 413, 479
Mol. Cryst. Liq. Cryst., 413, 527
Mol. Cryst. Liq. Cryst., 434, 183
Mol. Cryst. Liq. Cryst., 434, 63
Mol. Cryst. Liq. Cryst., 434, 97
Mol. Cryst. Liq. Cryst., 477, 155
Mol. Cryst. Liq. Cryst., 502, 235
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Proc. SPIE-Int. Soc. Opt. Eng., 1665, 114
Proc. SPIE-Int. Soc. Opt. Eng., 6332, 633205
Proc. SPIE-Int. Soc. Opt. Eng., 6654, 66540C
Proc. SPIE-Int. Soc. Opt. Eng., 7618, 761815


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