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基于苯并咪唑的金属有机框架中的定向激子迁移

Directional Exciton Migration in Benzoimidazole-Based Metal-Organic Frameworks.

作者信息

Gutiérrez-Arzaluz Luis, Jia Jiangtao, Gu Chun, Czaban-Jóźwiak Justyna, Yin Jun, Shekhah Osama, Bakr Osman M, Eddaoudi Mohamed, Mohammed Omar F

机构信息

Physical Sciences and Engineering Division, King Abdullah University of Science and Technology, Advanced Membranes and Porous Materials Center, Thuwal 23955-6900, Kingdom of Saudi Arabia.

KAUST Catalysis Center, Physical Sciences and Engineering Division, King Abdullah University of Science and Technology, Thuwal 23955-6900, Kingdom of Saudi Arabia.

出版信息

J Phys Chem Lett. 2021 May 27;12(20):4917-4927. doi: 10.1021/acs.jpclett.1c01053. Epub 2021 May 19.

Abstract

Highly luminescent metal-organic frameworks (MOFs) have recently received great attention due to their potential applications as sensors and light-emitting devices. In these MOFs, the highly ordered fluorescent organic linkers positioning prevents excited-state self-quenching and rotational motion, enhancing their light-harvesting properties. Here, the exciton migration between the organic linkers with the same chemical structure but different protonation degrees in Zr-based MOFs was explored and deciphered using ultrafast laser spectroscopy and density functional theory calculations. First, we clearly demonstrate how hydrogen-bonding interactions between free linkers and solvents affect the twisting changes, internal conversion processes, and luminescent behavior of a benzoimidazole-based linker. Second, we provide clear evidence of an ultrafast energy transfer between well-aligned adjacent linkers with different protonation states inside the MOF. These findings provide a new fundamental photophysical insight into the exciton migration dynamics between linkers with different protonation states coexisting at different locations in MOFs and serve as a benchmark for improving light-harvesting MOF architectures.

摘要

高发光金属有机框架材料(MOFs)因其作为传感器和发光器件的潜在应用,近来备受关注。在这些MOFs中,高度有序的荧光有机连接体定位可防止激发态自猝灭和旋转运动,增强其光捕获特性。在此,利用超快激光光谱和密度泛函理论计算,探索并解析了基于锆的MOFs中具有相同化学结构但质子化程度不同的有机连接体之间的激子迁移。首先,我们清晰地证明了游离连接体与溶剂之间的氢键相互作用如何影响基于苯并咪唑的连接体的扭曲变化、内转换过程和发光行为。其次,我们提供了明确证据,证明MOF内部具有不同质子化状态的排列良好的相邻连接体之间存在超快能量转移。这些发现为MOFs中不同位置共存的不同质子化状态的连接体之间的激子迁移动力学提供了新的基本光物理见解,并为改进光捕获MOF结构提供了基准。

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