Structural insight into piezo-solvatochromism of Reichardt’s dye

IF 2.9 2区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
IUCrJ Pub Date : 2024-07-01 DOI:10.1107/S2052252524004603
Szymon Sobczak , Andrzej Katrusiak , P. Lightfoot (Editor)
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引用次数: 0

Abstract

This work employs the preference of compounds to crystallize at high-pressure in the form of solvates to explore the solvation process and piezo-solvatochromic effects of Reichardt’s dye, ET(1). The solute–solvent interactions of this dye affect the optical properties of the dye in various solvents as shown by X-ray diffraction and UV–Vis spectroscopy, revealing applications in nonlinear optoelectronics and molecular pressure sensor development.

To date, accurate modelling of the solvation process is challenging, often over-simplifying the solvent–solute interactions. The interplay between the molecular arrangement associated with the solvation process and crystal nucleation has been investigated by analysis of the piezo-solvatochromic behaviour of Reichardt’s dye, ET(1), in methanol, ethanol and acetone under high pressure. High-pressure single-crystal X-ray diffraction and UV–Vis spectroscopy reveal the impact of solute–solvent interactions on the optical properties of ET(1). The study underscores the intricate relationship between solvent properties, molecular conformation and crystal packing. The connection between liquid and solid phases emphasizes the capabilities of high-pressure methods for expanding the field of crystal engineering. The high-pressure environment allowed the determination of the crystal structures reported here that are built from organic molecules fourfold solvated with ethanol or methanol: ET(1)·4CH3OH and ET(1)·4C2H5OH·H2O. The observed piezo-solvatochromic effects highlight the potential of ET(1) in nonlinear optoelectronics and expand the application of solvatochromic chemical indicators to pressure sensors.

从结构上洞察 Reichardt 染料的压溶色性。
迄今为止,对溶解过程进行精确建模是一项挑战,往往会过度简化溶剂与溶质之间的相互作用。通过分析 Reichardt 染料 ET(1) 在甲醇、乙醇和丙酮中高压下的压溶变色行为,研究了与溶解过程相关的分子排列与晶体成核之间的相互作用。高压单晶 X 射线衍射和紫外可见光谱揭示了溶质-溶剂相互作用对 ET(1) 光学特性的影响。这项研究强调了溶剂特性、分子构象和晶体堆积之间错综复杂的关系。液相和固相之间的联系强调了高压方法拓展晶体工程领域的能力。高压环境使得本文所报道的晶体结构得以确定,这些晶体结构由乙醇或甲醇四倍溶解的有机分子构建而成:ET(1)-4CH3OH 和 ET(1)-4C2H5OH-H2O。观察到的压溶变色效应凸显了 ET(1) 在非线性光电子学中的潜力,并将溶解变色化学指示剂的应用扩展到压力传感器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IUCrJ
IUCrJ CHEMISTRY, MULTIDISCIPLINARYCRYSTALLOGRAPH-CRYSTALLOGRAPHY
CiteScore
7.50
自引率
5.10%
发文量
95
审稿时长
10 weeks
期刊介绍: IUCrJ is a new fully open-access peer-reviewed journal from the International Union of Crystallography (IUCr). The journal will publish high-profile articles on all aspects of the sciences and technologies supported by the IUCr via its commissions, including emerging fields where structural results underpin the science reported in the article. Our aim is to make IUCrJ the natural home for high-quality structural science results. Chemists, biologists, physicists and material scientists will be actively encouraged to report their structural studies in IUCrJ.
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