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动态 B/N 路易斯对:通过光诱导荧光到磷光跃迁揭示结构变化和光致变色。

Dynamic B/N Lewis Pairs: Insights into the Structural Variations and Photochromism via Light-Induced Fluorescence to Phosphorescence Switching.

机构信息

Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials, Key Laboratory of Cluster Science of the Ministry of Education, School of Chemistry and Chemical Engineering, Beijing Institute of Technology of China, Beijing, 102488, China.

Department of Chemistry, Rutgers University-Newark, 73 Warren Street, Newark, NJ 07102, USA.

出版信息

Angew Chem Int Ed Engl. 2022 Dec 19;61(51):e202213615. doi: 10.1002/anie.202213615. Epub 2022 Nov 17.

Abstract

Ultralong afterglow emissions due to room-temperature phosphorescence (RTP) are of paramount importance in the advancement of smart sensors, bioimaging and light-emitting devices. We herein present an efficient approach to achieve rarely accessible phosphorescence of heavy atom-free organoboranes via photochemical switching of sterically tunable fluorescent Lewis pairs (LPs). LPs are widely applied in and well-known for their outstanding performance in catalysis and supramolecular soft materials but have not thus far been exploited to develop photo-responsive RTP materials. The intramolecular LP M1BNM not only shows a dynamic response to thermal treatment due to reversible N→B coordination but crystals of M1BNM also undergo rapid photochromic switching. As a result, unusual emission switching from short-lived fluorescence to long-lived phosphorescence (rad-M1BNM, τ =232 ms) is observed. The reported discoveries in the field of Lewis pairs chemistry offer important insights into their structural dynamics, while also pointing to new opportunities for photoactive materials with implications for fast responsive detectors.

摘要

室温磷光(RTP)的超长余晖发射在智能传感器、生物成像和发光器件的发展中至关重要。本文通过光化学开关空间可调荧光路易斯对(LPs),提出了一种实现重原子自由有机硼烷磷光的有效方法。LPs 在催化和超分子软材料中得到了广泛的应用和认可,因为它们具有出色的性能,但迄今为止尚未被开发用于制备光响应 RTP 材料。分子内 LP M1BNM 不仅由于可逆 N→B 配位而对热处理表现出动态响应,而且 M1BNM 的晶体也经历快速光致变色开关。结果,观察到从短寿命荧光到长寿命磷光(rad-M1BNM,τ=232 ms)的不寻常发射切换。路易斯对化学领域的这些发现为它们的结构动力学提供了重要的见解,同时也为具有快速响应探测器应用前景的光活性材料提供了新的机会。

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