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Variations of the helix in thin planar cholesteric layers influenced by surface anchoring

机译:受表面锚固影响的平面胆甾型薄层中螺旋的变化

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Unwinding (winding) of a helix in thin planar cholesteric layers induced by the varying external parameters (temperature, electric or magnetic field) and its dependence on the surface anchoring are theoretically investigated for the defectless mechanism of the cholesteric pitch jumps connected with a slipping of the director on the surface through the anchoring potential barrier. Earlier investigations of the problem performed for the case of the temperature variations showed strong dependence of the relevant phenomena on the anchoring potential (two sets of model anchoring potentials were considered). However the field dependence of the pitch variations was examined only for the Rapini-Papoular (R-P) anchoring potential. We performed investigation of the problem for two types anchoring potentials, R-P - potential and so called B-potential and found a qualitatively different behavior of the pitch in applied field for the different types of potential. The parameter S_d = K_(22)/(dW) (where K_(22) is the twist constant, W is the height of the anchoring potential and d is the sample thickness) governs the "pitch versus applied field (temperature)" dependence. The field dependences of the pitch are calculated for a planar cholesteric layer with infinite strength of anchoring at one surface and finite strength of anchoring at the second one for the R-P and B-surface anchoring potentials. It is found that for the B-potential the pitch jumps and hysteresis of these jumps exists at any strength of anchoring opposite to the case of the R-P-potential for which the jumps and hysteresis exist for sufficiently strong anchoring only when S_d < 1. In particular it is shown that the critical field of the complete helix unwinding E_c in a thin layer may be as essentially lower than the critical field in a bulk cholesteric so larger than this field and for some range of the relevant to the problem parameters the helix unwounded by the field remains to be unwounded after removing of the field.
机译:从理论上研究了由变化的外部参数(温度,电场或磁场)引起的薄平面胆甾醇层中螺旋的退绕(缠绕)及其对表面锚固的依赖性,以解决与滑移有关的胆甾醇沥青跳跃的无缺陷机制。导向器通过锚定势垒在表面上。早期对温度变化情况下的问题的研究表明,相关现象对锚定电势的依赖性很大(考虑了两组模型锚定电势)。但是,仅针对Rapini-Papoular(R-P)锚定电位检查了俯仰变化的场依赖性。我们针对两种类型的锚定电位R-P-电位和所谓的B电位进行了问题研究,发现对于不同类型的电位,在应用领域中音高在质上有不同的变化。参数S_d = K_(22)/(dW)(其中K_(22)是扭曲常数,W是锚定电位的高度,d是样品厚度)决定了“节距与施加场(温度)”的相关性。对于平面胆甾型层,对于R-P和B表面的锚固电位,在一个表面具有无限的锚固强度,在第二个表面具有有限的锚固强度,可以计算出螺距的场依赖性。发现对于B势,在任何锚固强度下,螺距跳变和这些跳变都存在于与RP势相反的情况下,对于RP势而言,仅当S_d <1时才存在对于足够强的锚定而存在的跳变和滞后。特别是,它表明,薄层中完整螺旋展开E_c的临界场可能比本体胆甾醇中的临界场低得多,因此比该场大,并且对于与问题参数相关的某个范围,螺旋未展开移开田野后,仍需解开田野的松动。

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