Optimized flexoelectric response in a chiral liquid-crystal phase device

被引:48
作者
Broughton, BJ [1 ]
Clarke, MJ [1 ]
Blatch, AE [1 ]
Coles, HJ [1 ]
机构
[1] Univ Cambridge, Ctr Mol Mat Photon & Elect, Dept Engn, Cambridge CB4 0FP, England
基金
英国工程与自然科学研究理事会;
关键词
D O I
10.1063/1.2006227
中图分类号
O59 [应用物理学];
学科分类号
摘要
In this paper, a device type is presented in which the conventional geometry for the flexoelectro-optic effect is rotated, utilizing planar-aligned short-pitch chiral nematic and in-plane electric fields. The cell is optically neutral at zero applied field due to having its helix axis lie in the direction of light propagation, and at optical communication wavelengths (1550 nm) polarization rotation is insignificant due to the helical pitch of the material being shorter than the illuminating wavelength. An electric field, applied in the plane of the cell, has been found to induce a birefringence via a combination of dielectric helix unwinding and flexoelectric deformation of the director helix. The magnitude of the birefringence and direction of the induced optic axis in the plane of the cell are dependent on the amplitude and direction of the applied electric field, providing potential for use in a fast endlessly rotatable polarization controller. Herein, the chiral nematic materials utilized in the cell are bimesogenic liquid crystals designed to optimize the contribution from the flexoelectro-optic effect, and eliminate dielectric helix unwinding. The materials are also polymer network stabilized to preserve the texture against degradation in the applied fields. The results presented show a progression from a combined dielectric and flexoelectrically induced birefringence of 0.016 at field strengths up to 6.8 V/mu m, to a purely flexoelectric-induced birefringence of 0.0135, sufficient for a quarter wave plate in a 29-mu m-thick cell. Response times are of the order of hundreds of microseconds for both reaction to an applied field and relaxation upon removal. (c) 2005 American Institute of Physics.
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页数:6
相关论文
共 14 条
[1]   In-fiber nematic liquid crystal optical modulator based on in-plane switching with microsecond response time [J].
Acharya, BR ;
Baldwin, KW ;
MacHarrie, RA ;
Rogers, JA ;
Huang, CC ;
Pindak, R .
APPLIED PHYSICS LETTERS, 2002, 81 (27) :5243-5245
[2]  
BETTS RA, 2004, Patent No. 2004021073
[3]   Liquid crystal based continuous phase retarder: from optically neutral to a quarter waveplate in 200 microseconds. [J].
Broughton, BJ ;
Clarke, MJ ;
Betts, RA ;
Bricheno, T ;
Coles, HJ .
Emerging Liquid Crystal Technologies, 2005, 5741 :190-196
[4]  
BROUGHTON BJ, UNPUB J APPL PHYS
[5]   Polarization stabilizer using liquid crystal rotatable waveplates [J].
Chiba, T ;
Ohtera, Y ;
Kawakami, S .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 1999, 17 (05) :885-890
[6]  
COLES HJ, UNPUB J APPL PHYS
[7]  
COLES HJ, 2001, Patent No. 2356629
[8]   Super high birefringence isothiocyanato biphenyl-bistolane liquid crystals [J].
Gauza, S ;
Wen, CH ;
Wu, ST ;
Janarthanan, N ;
Hsu, CS .
JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS BRIEF COMMUNICATIONS & REVIEW PAPERS, 2004, 43 (11A) :7634-7638
[9]   PIEZOELECTRIC EFFECTS IN LIQUID CRYSTALS [J].
MEYER, RB .
PHYSICAL REVIEW LETTERS, 1969, 22 (18) :918-&
[10]   A new series of chiral nematic bimesogens for the flexoelectro-optic effect [J].
Musgrave, B ;
Lehmann, P ;
Coles, HJ .
LIQUID CRYSTALS, 1999, 26 (08) :1235-1249