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极性向列相的出现:一位化学家对铁电向列相的见解。

The Emergence of a Polar Nematic Phase: A Chemist's Insight into the Ferroelectric Nematic Phase.

作者信息

Cruickshank Ewan

机构信息

School of Pharmacy and Life Sciences, Robert Gordon University, Aberdeen, AB10 7GJ, UK.

出版信息

Chempluschem. 2024 May;89(5):e202300726. doi: 10.1002/cplu.202300726. Epub 2024 Mar 26.

Abstract

The discovery of a new polar nematic phase; the ferroelectric nematic, has generated a great deal of excitement in the field of liquid crystals. To date there have been around 150 materials reported exhibiting the ferroelectric nematic phase, in general, following three key archetypal structures with these compounds known as RM734, DIO and UUQU-4N. In this review, the relationship between the molecular structure and the stability of the ferroelectric nematic, N, phase will be described from a chemist's perspective. This will look to highlight the wide variety of functionalities which have been incorporated into these archetypal structures and how these changes influence the transition temperatures of the mesophases present. The N phase appears to be stabilised particularly by reducing the length of terminal alkyl chains present and adding fluorines laterally along the length of the molecular backbone. This review will look to introduce the background of the ferroelectric nematic phase before then showing the molecular structures of a range of materials which exhibit the phase, describing their structure-property relationships and therefore giving an up-to-date account of the literature for this fascinating new mesophase.

摘要

一种新的极性向列相——铁电向列相的发现,在液晶领域引起了极大的轰动。迄今为止,已有约150种材料被报道呈现铁电向列相,总体而言,这些化合物遵循三种关键的原型结构,分别被称为RM734、DIO和UUQU - 4N。在这篇综述中,将从化学家的角度描述分子结构与铁电向列相(N相)稳定性之间的关系。这将着重强调已被纳入这些原型结构中的各种功能,以及这些变化如何影响所呈现的中间相的转变温度。N相似乎尤其通过缩短末端烷基链的长度以及沿分子主链长度横向添加氟原子而得以稳定。这篇综述将先介绍铁电向列相的背景,然后展示一系列呈现该相的材料的分子结构,描述它们的结构 - 性能关系,从而给出关于这个迷人的新中间相的最新文献综述。

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