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具有从可见光到近红外全色吸收带宽的基于苝的光热转换金属有机框架

Photothermal Conversion Perylene-Based Metal-Organic Framework with Panchromatic Absorption Bandwidth across the Visible to Near-Infrared.

作者信息

Liao Jian-Zhen, Zhu Zi-Chen, Liu Su-Ting, Ke Hua

机构信息

College of Materials and Chemical Engineering, Pingxiang University, Pingxiang, Jiangxi 337055, P. R. China.

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, P. R. China.

出版信息

Inorg Chem. 2024 Feb 19;63(7):3327-3334. doi: 10.1021/acs.inorgchem.3c03750. Epub 2024 Feb 5.

Abstract

Recently, facilely designable metal-organic frameworks have gained attention in the construction of photothermal conversion materials. Nonetheless, most of the previously reported photothermal conversion metal-organic frameworks exhibit limited light absorption capabilities. In this work, a distinctive metal-organic framework with heterogeneous periodic alternate spatial arrangements of metal-oxygen clusters and perylene-based derivative molecules was prepared by in situ synthesis. The building blocks in this inimitable structure behave as both electron donors and electron acceptors, giving rise to the significant inherent charge transfer in this crystalline material, resulting in a narrow band gap with excellent panchromatic absorption, with the ground state being the charge transfer state. Moreover, it can retain excellent air-, photo-, and water-stability in the solid state. The excellent stability and broad light absorption characteristics enable the effective realization of near-infrared (NIR) photothermal conversion, including infrequent NIR-II photothermal conversion, in this perylene-based metal-organic framework.

摘要

近年来,易于设计的金属有机框架在光热转换材料的构建中受到关注。然而,大多数先前报道的光热转换金属有机框架表现出有限的光吸收能力。在这项工作中,通过原位合成制备了一种具有金属 - 氧簇和苝基衍生物分子的异质周期性交替空间排列的独特金属有机框架。这种独特结构中的构建块既作为电子供体又作为电子受体,导致这种晶体材料中存在显著的固有电荷转移,从而产生具有优异全色吸收的窄带隙,其基态为电荷转移态。此外,它在固态下可以保持优异的空气、光和水稳定性。优异的稳定性和广泛的光吸收特性使得这种基于苝的金属有机框架能够有效地实现近红外(NIR)光热转换,包括罕见的NIR-II光热转换。

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