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用于观察光响应液晶结构动力学的新技术

Novel Techniques for Observing Structural Dynamics of Photoresponsive Liquid Crystals.

作者信息

Hada Masaki, Saito Shohei, Sato Ryuma, Miyata Kiyoshi, Hayashi Yasuhiko, Shigeta Yasuteru, Onda Ken

机构信息

Graduate School of Natural Science and Technology, Okayama University;

Graduate School of Science, Kyoto University.

出版信息

J Vis Exp. 2018 May 29(135):57612. doi: 10.3791/57612.

Abstract

We discuss in this article the experimental measurements of the molecules in liquid crystal (LC) phase using the time-resolved infrared (IR) vibrational spectroscopy and time-resolved electron diffraction. Liquid crystal phase is an important state of matter that exists between the solid and liquid phases and it is common in natural systems as well as in organic electronics. Liquid crystals are orientationally ordered but loosely packed, and therefore, the internal conformations and alignments of the molecular components of LCs can be modified by external stimuli. Although advanced time-resolved diffraction techniques have revealed picosecond-scale molecular dynamics of single crystals and polycrystals, direct observations of packing structures and ultrafast dynamics of soft materials have been hampered by blurry diffraction patterns. Here, we report time-resolved IR vibrational spectroscopy and electron diffractometry to acquire ultrafast snapshots of a columnar LC material bearing a photoactive core moiety. Differential-detection analyses of the combination of time-resolved IR vibrational spectroscopy and electron diffraction are powerful tools for characterizing structures and photoinduced dynamics of soft materials.

摘要

在本文中,我们讨论了使用时间分辨红外(IR)振动光谱和时间分辨电子衍射对液晶(LC)相中的分子进行的实验测量。液晶相是一种重要的物质状态,存在于固相和液相之间,在自然系统以及有机电子学中都很常见。液晶具有取向有序但堆积松散的特点,因此,液晶分子成分的内部构象和排列可以通过外部刺激进行改变。尽管先进的时间分辨衍射技术已经揭示了单晶和多晶的皮秒级分子动力学,但软材料的堆积结构和超快动力学的直接观测却因模糊的衍射图案而受到阻碍。在这里,我们报告了时间分辨红外振动光谱和电子衍射测量技术,以获取带有光活性核心部分的柱状液晶材料的超快快照。时间分辨红外振动光谱和电子衍射相结合的差分检测分析是表征软材料结构和光致动力学的有力工具。

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