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利用氢键型液晶设计化学响应性软物质

Design of Chemoresponsive Soft Matter Using Hydrogen-Bonded Liquid Crystals.

作者信息

Yu Huaizhe, Wang Kunlun, Szilvási Tibor, Nayani Karthik, Bao Nanqi, Twieg Robert J, Mavrikakis Manos, Abbott Nicholas L

机构信息

Robert Frederick Smith School of Chemical and Biomolecular Engineering, Cornell University, 1 Ho Plaza, Ithaca, NY 14853, USA.

Department of Chemistry and Biochemistry, Kent State University, 1175 Risman Drive, Kent, OH 44242, USA.

出版信息

Materials (Basel). 2021 Feb 24;14(5):1055. doi: 10.3390/ma14051055.

Abstract

Soft matter that undergoes programmed macroscopic responses to molecular analytes has potential utility in a range of health and safety-related contexts. In this study, we report the design of a nematic liquid crystal (LC) composition that forms through dimerization of carboxylic acids and responds to the presence of vapors of organoamines by undergoing a visually distinct phase transition to an isotropic phase. Specifically, we screened mixtures of two carboxylic acids, 4-butylbenzoic acid and trans-4-pentylcyclohexanecarboxylic acid, and found select compositions that exhibited a nematic phase from 30.6 to 111.7 °C during heating and 110.6 to 3.1 °C during cooling. The metastable nematic phase formed at ambient temperatures was found to be long-lived (>5 days), thus enabling the use of the LC as a chemoresponsive optical material. By comparing experimental infrared (IR) spectra of the LC phase with vibrational frequencies calculated using density functional theory (DFT), we show that it is possible to distinguish between the presence of monomers, homodimers and heterodimers in the mixture, leading us to conclude that a one-to-one heterodimer is the dominant species within this LC composition. Further support for this conclusion is obtained by using differential scanning calorimetry. Exposure of the LC to 12 ppm triethylamine (TEA) triggers a phase transition to an isotropic phase, which we show by IR spectroscopy to be driven by an acid-base reaction, leading to the formation of ammonium carboxylate salts. We characterized the dynamics of the phase transition and found that it proceeds via a characteristic spatiotemporal pathway involving the nucleation, growth, and coalescence of isotropic domains, thus amplifying the atomic-scale acid-base reaction into an information-rich optical output. In contrast to TEA, we determined via both experiment and computation that neither hydrogen bonding donor or acceptor molecules, such as water, dimethyl methylphosphonate, ethylene oxide or formaldehyde, disrupt the heterodimers formed in the LC, hinting that the phase transition (including spatial-temporal characteristics of the pathway) induced in this class of hydrogen bonded LC may offer the basis of a facile and chemically selective way of reporting the presence of volatile amines. This proposal is supported by exploratory experiments in which we show that it is possible to trigger a phase transition in the LC by exposure to volatile amines emitted from rotting fish. Overall, these results provide new principles for the design of chemoresponsive soft matter based on hydrogen bonded LCs that may find use as the basis of low-cost visual indicators of chemical environments.

摘要

能够对分子分析物产生程序化宏观响应的软物质在一系列与健康和安全相关的领域具有潜在应用价值。在本研究中,我们报告了一种向列型液晶(LC)组合物的设计,该组合物通过羧酸二聚化形成,并通过经历视觉上明显的向各向同性相的相变来响应有机胺蒸气的存在。具体而言,我们筛选了两种羧酸,即4-丁基苯甲酸和反式-4-戊基环己烷羧酸的混合物,发现了一些特定的组合物,它们在加热过程中呈现30.6至111.7°C的向列相,在冷却过程中呈现110.6至3.1°C的向列相。发现在环境温度下形成的亚稳态向列相寿命很长(>5天),因此能够将该液晶用作化学响应光学材料。通过将液晶相的实验红外(IR)光谱与使用密度泛函理论(DFT)计算的振动频率进行比较,我们表明可以区分混合物中单体、同二聚体和异二聚体的存在,从而得出结论,一对一异二聚体是该液晶组合物中的主要物种。通过差示扫描量热法获得了对该结论的进一步支持。将液晶暴露于12 ppm的三乙胺(TEA)会引发向各向同性相的相变,我们通过红外光谱表明这是由酸碱反应驱动的,导致形成羧酸铵盐。我们对相变的动力学进行了表征,发现它通过涉及各向同性域的成核、生长和聚结的特征时空路径进行,从而将原子尺度的酸碱反应放大为信息丰富的光学输出。与TEA相反,我们通过实验和计算确定,诸如水、甲基膦酸二甲酯、环氧乙烷或甲醛等氢键供体或受体分子均不会破坏液晶中形成的异二聚体,这表明此类氢键液晶中诱导的相变(包括路径的时空特征)可能为报告挥发性胺的存在提供一种简便且化学选择性的方法的基础。探索性实验支持了这一提议,在实验中我们表明通过暴露于腐烂鱼类释放的挥发性胺可以触发液晶中的相变。总体而言,这些结果为基于氢键液晶的化学响应软物质的设计提供了新原理,这些软物质可能用作低成本化学环境视觉指示器的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c0de/7975976/f3394dbef83a/materials-14-01055-sch001.jpg

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