Li Jinxing, Xia Runli, Xu Hao, Yang Jidan, Zhang Xinxin, Kougo Junichi, Lei Huanyu, Dai Shuqi, Huang Houbing, Zhang Guangzu, Cen Fangjie, Jiang Yuanbin, Aya Satoshi, Huang Mingjun
South China Advanced Institute for Soft Matter Science and Technology, School of Molecular Science and Engineering, South China University of Technology, Guangzhou 510640, China.
Guangdong Provincial Key Laboratory of Functional and Intelligent Hybrid Materials and Devices, South China University of Technology, Guangzhou 510640, China.
J Am Chem Soc. 2021 Oct 27;143(42):17857-17861. doi: 10.1021/jacs.1c09594. Epub 2021 Oct 17.
The emerging ferroelectric nematic () liquid crystal is a novel 3D-ordered liquid exhibiting macroscopic electric polarization. The combination of the ultrahigh dielectric constant, strong nonlinear optical signal, and high sensitivity to the electric field makes materials promising for the development of advanced liquid crystal electroopic devices. Previously, all studies focused on the rod-shaped small molecules with limited length () range and dipole moment (μ) values. Here, through the precision synthesis, we extend the aromatic rod-shaped mesogen to oligomer/polymer (repeat unit up to 12 with monodisperse molecular-weight dispersion) and increase the μ value over 30 Debye (D). The phase has a widespread existence far beyond our expectation and could be observed in all the oligomer/polymer length range. Notably, the phase experiences a nontrivial evolution pathway with the traditional apolar nematic phase completely suppressed, i.e., the phase nucleates directly from the isotropic liquid phase. The discovery of thte ferroelectric packing of oligomer/polymer rods not only offers the concept of extending the state to oligomers/polymers but also provides some previously overlooked insights in oxybenzoate-based liquid crystal polymer materials.
新兴的铁电向列相()液晶是一种呈现宏观电极化的新型三维有序液体。超高介电常数、强非线性光信号以及对电场的高灵敏度相结合,使得材料在先进液晶电光器件的开发方面具有广阔前景。此前,所有研究都集中在长度()范围和偶极矩(μ)值有限的棒状小分子上。在此,通过精确合成,我们将芳香族棒状液晶基元扩展到低聚物/聚合物(重复单元多达12个,分子量分布单分散),并将μ值提高到30德拜(D)以上。相的广泛存在远远超出我们的预期,并且在所有低聚物/聚合物长度范围内都能观察到。值得注意的是,相经历了一条不平凡的演化路径,传统的非极性向列相被完全抑制,即相直接从各向同性液相中形核。低聚物/聚合物棒状结构的铁电堆积的发现不仅提供了将态扩展到低聚物/聚合物的概念,还为基于对羟基苯甲酸酯的液晶聚合物材料提供了一些此前被忽视的见解。