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具有微调层间距的金属有机框架用于微波吸收。

Metal-organic frameworks with fine-tuned interlayer spacing for microwave absorption.

作者信息

Zhang Xue, Tian Xuelei, Wu Na, Zhao Shanyu, Qin Yutian, Pan Fei, Yue Shengying, Ma Xinyu, Qiao Jing, Xu Wei, Liu Wei, Liu Jiurong, Zhao Meiting, Ostrikov Kostya Ken, Zeng Zhihui

机构信息

Key Laboratory for Liquid-Solid Structural Evolution and Processing of Materials (Ministry of Education), School of Materials Science and Engineering, Shandong University, Jinan 250061, China.

School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, China.

出版信息

Sci Adv. 2024 Mar 15;10(11):eadl6498. doi: 10.1126/sciadv.adl6498. Epub 2024 Mar 13.

Abstract

Designing a functional, conductive metal-organic framework (cMOF) is highly desired. Substantial efforts have been dedicated to increasing the intralayer conjugation of the cMOFs, while less dedication has been made to tuning the interlayer charge transport of the metal-organic nanosheets for the controllable dielectric property. Here, we construct a series of conductive bimetallic organic frameworks of (ZnCu) (hexahydroxytriphenylene) (ZnCu-HHTP) to allow for fine-tuned interlayer spacing of two-dimensional frameworks, by adjusting the ratios of Zn and Cu metal ions. This approach for atomistic interlayer design allows for the finely control of the charge transport, band structure, and dielectric properties of the cMOF. As a result, Zn3Cu1-HHTP, with an optimal dielectric property, exhibits high-efficiency absorption in the gigahertz microwave range, achieving an ultra-strong reflection loss of -81.62 decibels. This study not only advances the understanding of the microstructure-function relationships in cMOFs but also offers a generic nanotechnology-based approach to achieving controllable interlayer spacing in MOFs for the targeted applications.

摘要

设计一种功能性的导电金属有机框架(cMOF)是非常有必要的。人们已经付出了巨大努力来增加cMOF的层内共轭,而在调节金属有机纳米片的层间电荷传输以实现可控介电性能方面所做的努力较少。在此,我们构建了一系列(ZnCu)(六羟基三亚苯)(ZnCu-HHTP)导电双金属有机框架,通过调整Zn和Cu金属离子的比例来实现二维框架层间距的精细调节。这种原子级层间设计方法能够精细控制cMOF的电荷传输、能带结构和介电性能。结果,具有最佳介电性能的Zn3Cu1-HHTP在吉赫兹微波范围内表现出高效吸收,实现了-81.62分贝的超强反射损耗。这项研究不仅推进了对cMOF中微观结构-功能关系的理解,还提供了一种基于纳米技术的通用方法,以在MOF中实现可控层间距用于目标应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/42ca/10936872/2cb4decf4456/sciadv.adl6498-f1.jpg

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