Kikuchi Hirotsugu, Matsukizono Hiroyuki, Iwamatsu Koki, Endo Sota, Anan Shizuka, Okumura Yasushi
Kyushu University, Institute for Materials Chemistry and Engineering, 6-1 Kasuga-Koen, Kasuga, Fukuoka, 816-8580, Japan.
Kyushu University, Interdisciplinary Graduate School of Engineering Sciences, 6-1 Kasuga-Koen, Kasuga, Fukuoka, 816-8580, Japan.
Adv Sci (Weinh). 2022 Sep;9(26):e2202048. doi: 10.1002/advs.202202048. Epub 2022 Jul 22.
Ferroelectricity in fluid materials, which allows free rotation of molecules, is an unusual phenomenon raising cutting-edge questions in science. Conventional ferroelectric liquid crystals have been found in phases with low symmetry that permit the presence of spontaneous polarization. Recently, the discovery of ferroelectricity with high symmetry in the nematic phase has attracted considerable attention. However, the physical mechanism and molecular origin of ferroelectricity are poorly understood and a large domain of macroscopically oriented spontaneous polarization is difficult to fabricate in the ferroelectric nematic phase. This study reports new fluid layered ferroelectrics with the C symmetry in which nearly complete orientation of the spontaneous polarization remains stable under zero electric field without any orientation treatment. These ferroelectrics are obtained by simplifying the molecular structure of a compound with a known ferroelectric nematic phase, although the simplification reduced the dipole moment. The results provide useful insights into the mechanism of ferroelectricity due to dipole-dipole interactions in molecular assemblies. The new ferroelectric materials are promising for a wide range of applications as soft ferroelectrics.
流体材料中的铁电性允许分子自由旋转,这是一种不寻常的现象,引发了科学界的前沿问题。传统的铁电液晶已在低对称相中被发现,这种相允许自发极化的存在。最近,向列相中具有高对称性的铁电性的发现引起了相当大的关注。然而,铁电性的物理机制和分子起源仍知之甚少,并且在铁电向列相中很难制造出宏观取向的自发极化的大区域。本研究报道了具有C对称性的新型流体层状铁电体,其中自发极化的几乎完全取向在零电场下无需任何取向处理即可保持稳定。这些铁电体是通过简化具有已知铁电向列相的化合物的分子结构而获得的,尽管这种简化降低了偶极矩。这些结果为分子组装中偶极 - 偶极相互作用导致的铁电性机制提供了有用的见解。作为软铁电体,这种新型铁电材料在广泛的应用中具有前景。