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Dislocation and impurity effects in smectic‐A liquid crystals

机译:近晶A液晶中的位错和杂质效应

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The effects of dislocations and impurities on the macroscopic elastic properties of smectic‐A liquid crystals are discussed. The first conclusion is that smectics behave like linear elastic media only so long as the stresses are smaller than some critical value that is analogous to the critical velocity of a superfluid. Below the critical stress, smectics can store elastic energy without flowing and consequently without any dissipative processes in analogy with the fact that, below a critical velocity, superfluids store kinetic energy without any dissipation. For most practical samples the critical smectic stress is that value for which pinned dislocation will grow unstable; however, for ideal samples, initially free of dislocations, the critical value is determined by the condition of unstable growth of thermally generated dislocation loops. In the linear elastic region both dislocations and impurities modify the macroscopic elastic properties such that the effective elastic constant is smaller than the value for an ideal sample. This is a sort of diaelasticity and can be discussed in the same way as diamagnetism. Impurities are shown to act as sources of stress fields analogous to the way magnetic dipoles and magnetic monopoles are sources of magnetic fields. The result is to predict long‐range elastic interactions between impurities in smectic systems. Since biological systems like chloroplasts and retinal rods have lamellarlike structures that are similar to the smectic structure, there is the possibility that long‐range elastic interactions may play some role in biological function.
机译:讨论了位错和杂质对近晶A液晶宏观弹性性能的影响。第一个结论是,仅当应力小于类似于超流体临界速度的某些临界值时,smectics的行为才像线性弹性介质。在临界应力以下,辛铁合金可以存储弹性能量而不会流动,因此没有任何耗散过程,这类似于在临界速度以下超流体存储动能而没有任何耗散的事实。对于大多数实际样品,关键的近晶应力是指钉扎位错将变得不稳定的那个值。但是,对于最初没有位错的理想样品,临界值由热产生的位错环不稳定增长的条件确定。在线性弹性区域中,位错和杂质都会改变宏观的弹性特性,从而有效弹性常数小于理想样品的值。这是一种双弹性,可以与抗磁性相同的方式进行讨论。杂质被显示为应力场的源,类似于磁偶极子和磁单极子是磁场源的方式。结果是预测近晶系统杂质之间的长程弹性相互作用。由于诸如叶绿体和视网膜棒之类的生物系统具有类似于近晶结构的层状结构,因此长期的弹性相互作用可能在生物学功能中发挥某些作用。

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    《Journal of Applied Physics》 |1975年第6期|P.2343-2353|共11页
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  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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