液晶与显示, 2017, 32 (5): 325, 网络出版: 2017-08-09   

蓝相液晶材料与光子学器件研究进展

Progresses on the researches of blue phase liquid crystal materials and photonic devices
作者单位
华东理工大学 物理系, 上海 200237
引用该论文

刘桢, 沈冬, 王骁乾, 郑致刚. 蓝相液晶材料与光子学器件研究进展[J]. 液晶与显示, 2017, 32(5): 325.

LIU Zhen, SHEN Dong, WANG Xiao-qian, ZHENG Zhi-gang. Progresses on the researches of blue phase liquid crystal materials and photonic devices[J]. Chinese Journal of Liquid Crystals and Displays, 2017, 32(5): 325.

参考文献

[1] KIKUCHI H. Liquid crystalline blue phases[M]//KATO T. Liquid Crystalline Functional Assemblies and Their Supramolecular Structures. Berlin Heidelberg: Springer, 2008: 99-117.

[2] HIGASHIGUCHI K, YASUI K, KIKUCHI H. Direct observation of polymer-stabilized blue phase I structure with confocal laser scanning microscope [J]. J. Am. Chem. Soc., 2008, 130(20): 6326-6327.

[3] ZHENG Z G, WANG H F, ZHU G, et al. Low-temperature-applicable polymer-stabilized blue-phase liquid crystal and its Kerr effect [J]. J. Soc. Inf. Disp., 2012, 20(6): 326-332.

[4] MAO J L, WANG J, FAN H X, et al. Low-voltage and high-transmittance blue-phase liquid crystal display with concave electrode [J]. Liq. Cryst., 2016, 43(4): 535-539.

[5] LI Y, HUANG S J, RONG N, et al. Transmissive and transflective blue-phase LCDs With double-layer IPS electrodes [J]. J. Disp. Technol., 2016, 12(2): 122-128.

[6] DOU H, MA H M, SUN Y B. Optical simulation of in-plane-switching blue phase liquid crystal display using the finite-difference time-domain method [J]. Chin. Phys. B, 2016, 25(9): 094221.

[7] MA H M, YANG R X, SUN Y B. The optical threshold and saturation voltage of blue-phase liquid crystal display with uniform operating electric field [J]. Liq. Cryst., 2015, 42(12): 1743-1747.

[8] LI Y F, MA H M, SUN Y B. Biaxial film design for full-colour, wide-view and high-contrast blue phase liquid crystal displays [J]. Liq. Cryst., 2015, 42(1): 46-51.

[9] FAN H X, WANG Q H, CUI J P, et al. Low voltage blue-phase liquid crystal display with triple-penetrating fringe fields [J]. Liq. Cryst., 2015, 42(1): 41-45.

[10] FAN H X, CUI J P, WANG Q H. High transmittance blue-phase liquid crystal display with improved protrusion electrodes [J]. Liq. Cryst., 2015, 42(4): 481-485.

[11] DOU H, MA H M, SUN Y B. Transmittance and reflectance of cholesteric and blue phase liquid crystal [J]. Acta Phys. Sin., 2015, 64(12): 126101.

[12] CHEN C P, LI Y, SU Y K, et al. Transmissive interferometric display with single-layer fabry-pérot filter [J]. J. Disp. Technol., 2015, 11(9): 715-719.

[13] ZHONG E W, NI S B, TAN J, et al. A transflective display using blue phase liquid crystal [J]. J. Disp. Technol., 2014, 10(5): 357-361.

[14] ZHAO Y L, SUN Y B, LI Y F, et al. Optimisation of blue-phase liquid crystal with protrusion [J]. Liq. Cryst., 2014, 41(11): 1583-1594.

[15] TANG P, CUI J P, FAN H X, et al. Blue phase dual-view liquid crystal display based on directional backlight system [J]. J. Soc. Inf. Disp., 2014, 22(12): 652-657.

[16] SUN Y B, ZHAO Y L, LI Y F, et al. Optimisation of in-plane-switching blue-phase liquid crystal display [J]. Liq. Cryst., 2014, 41(5): 717-720.

[17] SUN Y B, ZHAO Y L, LI Y F, et al. A low operating electric field blue-phase liquid crystal display with wedge protrusion [J]. J. Disp. Technol., 2014, 10(9): 797-801.

[18] SUN Y B, LI Y F, ZHAO Y L, et al. A low voltage and continuous viewing angle controllable blue phase liquid crystal display [J]. J. Disp. Technol., 2014, 10(6): 484-487.

[19] LI Y F, SUN Y B, ZHAO Y L, et al. A continuous viewing angle controllable blue phase liquid crystal display [J]. J. Disp. Technol., 2014, 10(10): 827-831.

[20] SU Z F, CHEN Y Q, LU J G, et al. High-transmittance polymer-stabilised blue-phase liquid crystal display with double-sided protrusion electrodes [J]. Liq. Cryst., 2013, 40(7): 976-979.

[21] LI P, SUN Y B, ZHAO Y L, et al. High transmittance blue-phase liquid crystal displays with slit-shaped electrode [J]. Liq. Cryst., 2013, 40(10): 1417-1421.

[22] LI P, SUN Y B, WANG Q H. A transflective and viewing angle controllable blue-phase liquid crystal display [J]. Liq. Cryst., 2013, 40(8): 1024-1027.

[23] CUI J P, LI Y, YAN J, et al. Time-multiplexed dual-view display using a blue phase liquid crystal [J]. J. Disp. Technol., 2013, 9(2): 87-90.

[24] ZHOU F, WANG Q H, WU D, et al. Polymer-stabilized blue phase liquid crystal display with slanted wall-shaped electrodes [J]. Chin. Opt. Lett., 2012, 10(2): 002301.

[25] YUAN L, CUI J P, LI D H, et al. Viewing angle switchable blue-phase liquid crystal display with low voltage and high transmittance [J]. J. Soc. Inf. Disp., 2012, 20(12): 692-696.

[26] LIU L W, CUI J P, LI D H, et al. A viewing-angle-controllable blue-phase liquid-crystal display [J]. J. Soc. Inf. Disp., 2012, 20(6): 337-340.

[27] LIANG D, LUO J Y, ZHAO W X, et al. 2D/3D switchable autostereoscopic display based on polymer-stabilized blue-phase liquid crystal lens [J]. J. Disp. Technol., 2012, 8(10): 609-612.

[28] CUI J P, ZHOU F, SONG C Q, et al. Low-voltage and high-transmittance blue-phase liquid-crystal device with slanted electrodes [J]. J. Soc. Inf. Disp., 2012, 20(6): 347-350.

[29] ZHOU F, CUI J P, WANG Q H, et al. A single-cell-gap transflective display using a blue-phase liquid crystal [J]. J. Disp. Technol., 2011, 7(4): 170-173.

[30] WU D, WANG Q H, ZHOU F, et al. Low voltage and high optical efficiency single-cell-gap transflective display using a blue-phase liquid crystal [J]. J. Disp. Technol., 2011, 7(8): 459-462.

[31] SONG C Q, WANG Q H, CUI J P, et al. Low voltage and high transmittance transflective display using polymer-stabilized blue-phase liquid crystal [J]. J. Disp. Technol., 2011, 7(5): 250-254.

[32] LIU L W, WANG Q H, CUI J P. A continuous-viewing-angle-controllable liquid-crystal display using a blue-phase liquid crystal [J]. J. Soc. Inf. Disp., 2011, 19(8): 547-550.

[33] CUI J P, ZHOU F, WANG Q H, et al. Transflective blue-phase liquid crystal display using an etched in-plane switching structure [J]. J. Disp. Technol., 2011, 7(7): 398-401.

[34] CUI J P, WANG Q H, ZHOU F. Transflective blue-phase liquid-crystal display with corrugated electrode structure [J]. J. Soc. Inf. Disp., 2011, 19(11): 709-712.

[35] CHEN Y Q, SUN Y B, YANG G Q. Low voltage and high transmittance blue-phase LCDs with double-side in-plane switching electrodes [J]. Liq. Cryst., 2011, 38(5): 555-559.

[36] 李江伟, 别国军, 高嫒嫒, 等.聚合物稳定蓝相液晶用单体研究进展[J].液晶与显示, 2016, 31(3): 249-257.

    LI J W, BIE G J, GAO Y Y,et al. Advances on monomers used in polymer stabilized blue phase liquid crystal [J]. Chin. J. Liq. Cryst. Disp., 2016, 31(3): 249-257. (in Chinese)

[37] KIKUCHI H, YOKOTA M, HISAKADO Y, et al. Polymer-stabilized liquid crystal blue phases [J]. Nat. Mater., 2002, 1(1): 64-68.

[38] ZHENG Z G, ZHANG D, LIN X W, et al. Bistable state in polymer stabilized blue phase liquid crystal [J]. Opt. Mater. Express, 2012, 2(10): 1353-1358.

[39] ZHU J L, NI S B, SONG Y, et al. Improved Kerr constant and response time of polymer-stabilized blue phase liquid crystal with a reactive diluent [J]. Appl. Phys. Lett., 2013, 102(7): 071104.

[40] LI J W, DU W S, GAO A A, et al. Enlarging the Kerr constant of polymer-stabilised blue phases with a novel chiral monomer [J]. Liq. Cryst., 2016, 43(7): 937-943.

[41] YANG W Q, CAI G Q, LIU Z, et al. Room temperature stable helical blue phase enabled by a photo-polymerizable bent-shaped material [J]. J. Mater. Chem. C, 2017, 5(3): 690-696.

[42] ZHENG Z G, SHEN D, HUANG P. Wide blue phase range of chiral nematic liquid crystal doped with bent-shaped molecules [J]. New J. Phys., 2010, 12(11): 113018.

[43] ZHENG Z G, SHEN D, HUANG P. The liquid crystal blue phase induced by bent-shaped molecules with different terminal chain lengths [J]. New J. Phys., 2011, 13(6): 063037.

[44] WANG H F, ZHENG Z G, SHEN D. Blue phase liquid crystals induced by bent-shaped molecules based on 1, 3, 4-oxadiazole derivatives [J]. Liq. Cryst., 2012, 39(1): 99-103.

[45] WANG L, YU L L, XIAO X, et al. Effects of 1, 3, 4-oxadiazoles with different rigid cores on the thermal and electro-optical performances of liquid crystalline blue phases [J]. Liq. Cryst., 2012, 39(5): 629-638.

[46] WANG L, HE W L, WANG M, et al. Effects of symmetrically 2, 5-disubstituted 1, 3, 4-oxadiazoles on the temperature range of liquid crystalline blue phases: a systematic study [J]. Liq. Cryst., 2013, 40(3): 354-367.

[47] WANG X, HE W L, YANG Z, et al. The effects of asymmetric bent-shaped compounds on the temperature range and electro-optical performances of liquid crystalline blue phases [J]. RSC Adv., 2016, 6(112): 110750-110757.

[48] ZHU G, LIN X W, HU W, et al. Liquid crystal blue phase induced by bent-shaped molecules with allylic end groups [J]. Opt. Mater. Express, 2011, 1(8): 1478-1483.

[49] WANG L, HE W L, XIAO X, et al. Wide blue phase range and electro-optical performances of liquid crystalline composites doped with thiophene-based mesogens [J]. J. Mater. Chem., 2012, 22(6): 2383-2386.

[50] ZHANG W K, HE W L, DI C C, et al. Effects of thiophene-based mesogen terminated with branched alkoxy group on the temperature range and electro-optical performances of liquid crystalline blue phases [J]. Liq. Cryst., 2016, 43(4): 524-534.

[51] LIU H P, SHEN D, WANG X Q, et al. Wide blue phase range induced by bent-shaped molecules with acrylate end groups [J]. Opt. Mater. Express, 2016, 6(2): 436-443.

[52] HE W L, PAN G H, YANG Z, et al. Wide blue phase range in a hydrogen-bonded self-assembled complex of chiral fluoro-substituted benzoic acid and pyridine derivative [J]. Adv. Mater., 2009, 21(20): 2050-2053.

[53] HE W L, WEI M J, YANG H, et al. Flexible H-bonded liquid-crystals with wide enantiotropic blue phases [J]. Phys. Chem. Chem. Phys., 2014, 16(12): 5622-5626.

[54] HE W L, YANG Z, CAO H, et al. Chiral hydrogen-bonded complex with different mesogens length and its effect on the performances of blue phase [J]. Opt. Mater. Express, 2016, 6(3): 868-875.

[55] HE W L, WANG X, YANG Z, et al. Effect of the dimeric H-bonded mesogens of chiral acids on the mesogenic and optical properties [J]. Liq. Cryst., 2016, 43(7): 874-885.

[56] LI Y Y, CONG Y H, CHU H S, et al. Blue phases induced by rod-shaped hydrogen-bonded supermolecules possessing no chirality or mesomorphic behaviour [J]. J. Mater. Chem. C, 2014, 2(10): 1783-1790.

[57] GUO J B, SHI Y, HAN X, et al. Stabilizing blue phases of a simple cyanobiphenyl compound by addition of achiral mesogen monomer with a branched end group and chiral hydrogen-bonded assemblies [J]. J. Mater. Chem. C, 2013, 1(5): 947-957.

[58] WEN Y, ZHENG Z G, WANG H F, et al. Photoinduced phase transition behaviours of the liquid crystal blue phase doped with azobenzene bent-shaped molecules [J]. Liq. Cryst., 2012, 39(4): 509-514.

[59] WU Y P, ZHOU Y C, YIN L C, et al. Photoinduced liquid crystal blue phase by bent-shaped cis isomer of the azobenzene doped in chiral nematic liquid crystal [J]. Liq. Cryst., 2013, 40(6): 726-733.

[60] WANG J, SHI Y, YANG K, et al. Stabilization and optical switching of liquid crystal blue phase doped with azobenzene-based bent-shaped hydrogen-bonded assemblies [J]. RSC Adv., 2015, 5(82): 67357-67364.

[61] JIN O Y, FU D W, WEI J, et al. Light-induced wide range color switching of liquid crystal blue phase doped with hydrogen-bonded chiral azobenzene switches [J]. RSC Adv., 2014, 4(54): 28597-28600.

[62] CHEN X W, WANG L, LI C Y, et al. Light-controllable reflection wavelength of blue phase liquid crystals doped with azobenzene-dimers [J]. Chem. Commun., 2013, 49(86): 10097-10099.

[63] WANG L, HE W L, XIAO X, et al. Hysteresis-free blue phase liquid-crystal-stabilized by znS nanoparticles [J]. Small, 2012, 8(14): 2189-2193.

[64] WANG L, HE W L, XIAO X, et al. Low voltage and hysteresis-free blue phase liquid crystal dispersed by ferroelectric nanoparticles [J]. J. Mater. Chem., 2012, 22(37): 19629-19633.

[65] WANG L, HE W L, WANG Q, et al. Polymer-stabilized nanoparticle-enriched blue phase liquid crystals [J]. J. Mater. Chem. C, 2013, 1(40): 6526-6531.

[66] XU X W, ZHANG X W, LUO D, et al. Low voltage polymer-stabilized blue phase liquid crystal reflective display by doping ferroelectric nanoparticles [J]. Opt. Express, 2015, 23(25): 32267-32273.

[67] ZHANG X W, LUO D, LI Y, et al. PbS nanoparticles stabilised blue phase liquid crystals [J]. Liq. Cryst., 2015, 42(9): 1257-1261.

[68] HE W L, ZHANG W K, XU H, et al. Preparation and optical properties of Fe3O4 nanoparticles-doped blue phase liquid crystal [J]. Phys. Chem. Chem. Phys., 2016, 18(42): 29028-29032.

[69] NI S B, LI H J, LI S, et al. Low-voltage blue-phase liquid crystals with polyaniline-functionalized graphene nanosheets [J]. J. Mater. Chem. C, 2014, 2(9): 1730-1735.

[70] ZHU G, LI J N, LIN X W, et al. Polarization-independent blue-phase liquid-crystal gratings driven by vertical electric field [J]. J. Soc. Inf. Disp., 2012, 20(6): 341-346.

[71] ZHU J L, LU J G, QIANG J, et al. 1D/2D switchable grating based on field-induced polymer stabilized blue phase liquid crystal [J]. J. Appl. Phys., 2012, 111(3): 033101.

[72] YAN J, XING Y F, LI Q. Dual-period tunable phase grating using polymer stabilized blue phase liquid crystal [J]. Opt. Lett., 2015, 40(19): 4520-4523.

[73] LUO D, DAI H T, SUN X W. Polarization-independent electrically tunable/switchable Airy beam based on polymer-stabilized blue phase liquid crystal [J]. Opt. Express, 2013, 21(25): 31318-31323.

[74] GE S J, CHEN P, MA L L, et al. Optical array generator based on blue phase liquid crystal Dammann grating [J]. Opt. Mater. Express, 2016, 6(4): 1087-1092.

[75] GAO L, ZHENG Z Z, ZHU J L, et al. Dual-period tunable phase grating based on a single in-plane switching [J]. Opt. Lett., 2016, 41(16): 3775-3778.

[76] GE S J, JI W, CUI G X, et al. Fast switchable optical vortex generator based on blue phase liquid crystal fork grating [J]. Opt. Mater. Express, 2014, 4(12): 2535-2541.

[77] YUAN Y C, LI Y, CHEN C P, et al. Polymer-stabilized blue-phase liquid crystal grating cured with interfered visible light [J]. Opt. Express, 2015, 23(15): 20007-20013.

[78] RONG N, LI Y, LI X, et al. Polymer-stabilized blue-phase liquid crystal fresnel lens cured with patterned light using a spatial light modulator [J]. J. Disp. Technol., 2016, 12(10): 1008-1012.

[79] TAN J, SONG Y, ZHU J L, et al. Blue phase LC/polymer fresnel lens fabricated by holographics [J]. J. Disp. Technol., 2014, 10(2): 157-161.

[80] CHEN C W, JAU H C, WANG C T, et al. Random lasing in blue phase liquid crystals [J]. Opt. Express, 2012, 20(21): 23978-23984.

[81] WANG L, WANG M, YANG M C, et al. Bichromatic coherent random lasing from dye-doped polymer stabilized blue phase liquid crystals controlled by pump light polarization [J]. Chin. Phys. B, 2016, 25(9): 094217.

[82] CAO W Y, MUOZ A, PALFFY-MUHORAY P, et al. Lasing in a three-dimensional photonic crystal of the liquid crystal blue phase II [J]. Nat. Mater., 2002, 1(2): 111-113.

[83] YOKOYAMA S, MASHIKO S, KIKUCHI H, et al. Laser emission from a polymer-stabilized liquid-crystalline blue phase [J]. Adv. Mater., 2006, 18(1): 48-51.

[84] ISOMURA T, YOSHIDA H, FUJII A, et al. Laser emission from a photopolymerized cholesteric blue phase II [J]. Mol. Cryst. Liq. Cryst., 2010, 516(1): 197-201.

[85] HUR S T, LEE B R, GIM M J, et al. Liquid-crystalline blue phase laser with widely tunable wavelength [J]. Adv. Mater., 2013, 25(21): 3002-3006.

[86] LIN J D, HUANG S Y, WANG H S, et al. Spatially tunable photonic bandgap of wide spectral range and lasing emission based on a blue phase wedge cell [J]. Opt. Express, 2014, 22(24): 29479-29492.

[87] KIM K, HUR S T, KIM S, et al. A well-aligned simple cubic blue phase for a liquid crystal laser [J]. J. Mater. Chem. C, 2015, 3(21): 5383-5388.

[88] YAN J, GUO Z B, XING Y F, et al. Investigation of fringing electric field effect on high-resolution blue phase liquid crystal spatial light modulator [J]. Appl. Opt., 2015, 54(24): 7169-7174.

[89] YAN J, XING Y F, GUO Z B, et al. Low voltage and high resolution phase modulator based on blue phase liquid crystals with external compact optical system [J]. Opt. Express, 2015, 23(12): 15256-15264.

[90] ZHU G, WEI B Y, SHI L Y, et al. A fast response variable optical attenuator based on blue phase liquid crystal [J]. Opt. Express, 2013, 21(5): 5332-5337.

刘桢, 沈冬, 王骁乾, 郑致刚. 蓝相液晶材料与光子学器件研究进展[J]. 液晶与显示, 2017, 32(5): 325. LIU Zhen, SHEN Dong, WANG Xiao-qian, ZHENG Zhi-gang. Progresses on the researches of blue phase liquid crystal materials and photonic devices[J]. Chinese Journal of Liquid Crystals and Displays, 2017, 32(5): 325.

本文已被 7 篇论文引用
被引统计数据来源于中国光学期刊网
引用该论文: TXT   |   EndNote

相关论文

加载中...

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!