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基于苯并噻唑腙螯合物的具有聚集诱导发光活性的BODIHY及其人工光捕获和可逆机械变色行为

AIE-Active BODIHYs Based on Benzothiazole-Hydrazone Chelates and Their Artificial Light Harvesting and Reversible Mechanochromic Behavior.

作者信息

Singh Nikhil Kumar, Kushwaha Ashish Kumar, Pandey Daya Shankar

机构信息

Department of Chemistry, Institute of Science, Banaras Hindu University, Varanasi, Uttar Pradesh, 221005, India.

出版信息

Chem Asian J. 2025 Sep;20(18):e00434. doi: 10.1002/asia.202500434. Epub 2025 Jul 11.

Abstract

Efficient artificial light-harvesting systems (ALH) involving energy transfer via FRET in an aqueous environment has been reported. Hydrazone ligands L1-L3 and -BF complexes (BODIHYs; B1-B3) derived from these have been synthesized and meticulously characterized by various techniques likeH, C, B, F NMR, ESI-MS, UV-vis, fluorescence spectroscopy, and structures of B1 and B2 unequivocally determined by X-ray single crystal analyses. Applicability of the B1-B3 have been examined as a LHS platform and categorically shown that these in combination with rhodamine B (RhB) display efficient light harvesting activity under aqueous conditions via aggregation-induced emission (AIE). Calculated energy transfer efficiency and antenna effect for the BODIHYs are significantly high (B1 = 22%, 5.04; B2 = 18%, 4.07) at a donor/acceptor ratio of 23:1. Furthermore, hypsochromic shift shown by B1 and B2 after grinding completely reverses upon exposure to dichloromethane vapors. Powder X-ray diffraction (PXRD) analyses before and after grinding revealed that the external forces modify crystal packing by disrupting weak intra- and intermolecular interactions within the molecules.

摘要

据报道,在水性环境中,通过荧光共振能量转移(FRET)实现能量转移的高效人工光捕获系统(ALH)已被开发出来。已经合成了衍生自腙配体L1-L3的-BF配合物(BODIHYs;B1-B3),并通过多种技术对其进行了细致表征,如氢谱、碳谱、硼谱、氟谱核磁共振、电喷雾质谱、紫外可见光谱、荧光光谱,且通过X射线单晶分析明确确定了B1和B2的结构。已将B1-B3作为光捕获系统(LHS)平台进行适用性研究,并明确表明这些配合物与罗丹明B(RhB)组合时,在水性条件下通过聚集诱导发光(AIE)表现出高效的光捕获活性。在供体/受体比例为23:1时,计算得出的BODIHYs的能量转移效率和天线效应显著较高(B1 = 22%,5.04;B2 = 18%,4.07)。此外,研磨后B1和B2显示的紫移在暴露于二氯甲烷蒸气后完全逆转。研磨前后的粉末X射线衍射(PXRD)分析表明,外力通过破坏分子内和分子间的弱相互作用来改变晶体堆积。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd82/12450043/4aca10c21d1b/ASIA-20-e00434-g005.jpg

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