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电场对新型液晶乳酸衍生物的独特影响。

Unique effect of an electric field on a new liquid crystalline lactic acid derivative.

机构信息

Institute of Physics, The Czech Academy of Sciences, Na Slovance 2, CZ-182 21 Prague 8, Czech Republic.

出版信息

Soft Matter. 2015 Jun 21;11(23):4649-57. doi: 10.1039/c5sm00563a.

Abstract

A new chiral lactic acid derivative is presented, exhibiting a frustrated liquid crystalline phase, namely the orthogonal twist grain boundary TGBA phase in a broad temperature interval. A unique effect is observed that the applied electric field reversibly transforms the planar TGBA texture to the homeotropic one, homogeneously dark in crossed polarizers. The transformation is analogous to the Frederiks transition known in nematics, in which switching under electric field is driven by the positive dielectric anisotropy. A similar effect is established also in the SmA phase of the racemic mixture, where the field induced transformation is irreversible. A positive dielectric anisotropy in both the chiral compound and the racemic mixture is detected up to the frequency of about 10 kHz, above this frequency the anisotropy is negative. The unusual behavior of the TGBA phase under the electric field can be explained by the specific packing of molecules within the smectic layers, resulting in a relatively high layer compressibility which lowers the energy of the structural defects and thus facilitates the structure transformation. The perfectly dark state of the studied compounds, induced by the electric field, either stable or reversible, is appealing for specific applications. The change of the sign of the dielectric anisotropy, known in nematics as the dual frequency effect, might be important for photonics such as adaptive or diffractive optics.

摘要

一种新的手性乳酸衍生物被呈现,表现出一种受挫的液晶相,即在较宽的温度间隔内呈现正交扭曲谷界 TGBA 相。观察到一种独特的效应,即外加电场可逆地将平面 TGBA 织构转变为各向同性的,在正交偏光镜下均匀暗场。这种转变类似于向列相中的 Frederiks 转变,其中电场驱动的开关是由正介电各向异性引起的。在消旋混合物的 SmA 相中也建立了类似的效应,其中电场诱导的转变是不可逆的。在手性化合物和消旋混合物中均检测到正介电各向异性,直至约 10 kHz 的频率,在此频率之上,各向异性为负。在电场下 TGBA 相的异常行为可以通过分子在层状相中特定的堆积来解释,这导致层状压缩性相对较高,从而降低了结构缺陷的能量,从而促进了结构转变。通过电场诱导的研究化合物的完全暗态,无论是稳定的还是可逆的,都吸引了特定的应用。在向列相中称为双频效应的介电各向异性的符号变化,对于自适应或衍射光学等光子学可能很重要。

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