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邻碳硼烷二元体系的近红外压致变色:硼簇促进大范围红移和高灵敏度

Near-Infrared Piezochromism from an o-Carborane Dyad: Boron Clusters Facilitating a Wide-Range Redshift and High Sensitivity.

作者信息

Lv Chunyan, Shen Yunxia, Cao Feng, Zhang Qing, Wang Kai, Zhang Yujian

机构信息

Department of Materials Chemistry, Huzhou University, East 2nd Ring Rd. No. 759, Huzhou, 313000, P. R. China.

Key Laboratory of the Ministry of, Education for Advanced Catalysis Materials, Department of Chemistry, Zhejiang Normal University, Yingbin Road No. 688, Jinhua, 321004, P. R. China.

出版信息

Chemistry. 2023 Mar 22;29(17):e202300049. doi: 10.1002/chem.202300049. Epub 2023 Feb 20.

Abstract

Piezochromic materials, which exhibit a fluorescence response with large emission spectral shifts and high sensitivity, may be useful in important applications, but there have been few reports of such organic luminophores. Herein, we report a new high-sensitivity piezochromic material based on the incorporation of an o-carborane unit, which exhibits aggregation-induced emission properties. In a high-pressure experiment, compared to carborane-free MTY, which exhibits an emission spectral shift of 75 nm and a sensitivity of 19.1 nm ⋅ GPa , the o-carborane dyad MTCb shows a larger emission wavelength difference of 131 nm and a higher sensitivity of 32.8 nm ⋅ GPa , demonstrating a performance that ranks among the best of organic piezochromic materials reported thus far. MTCb molecules adopt a J-aggregated pattern and have relatively loose molecular packing in the crystalline state. Interestingly, nonconjugated spherical carborane can disrupt the π-π interactions between adjacent molecules during compression, which results in excellent piezochromic performance.

摘要

压致变色材料能够表现出具有大发射光谱位移和高灵敏度的荧光响应,在重要应用中可能具有实用价值,但关于此类有机发光体的报道却很少。在此,我们报道了一种基于引入邻碳硼烷单元的新型高灵敏度压致变色材料,该材料具有聚集诱导发光特性。在高压实验中,与无碳硼烷的MTY相比,MTY的发射光谱位移为75 nm,灵敏度为19.1 nm ⋅ GPa,而邻碳硼烷二元体MTCb表现出更大的发射波长差,为131 nm,灵敏度更高,为32.8 nm ⋅ GPa,其性能跻身于迄今为止报道的最佳有机压致变色材料之列。MTCb分子采用J-聚集模式,在晶体状态下具有相对松散的分子堆积。有趣的是,非共轭球形碳硼烷在压缩过程中会破坏相邻分子之间的π-π相互作用,从而产生优异的压致变色性能。

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