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基于联苯四羧酸的金属有机框架:拓扑依赖性热膨胀的一个实例

Biphenyl tetracarboxylic acid-based metal-organic frameworks: a case of topology-dependent thermal expansion.

作者信息

Liu Zhanning, Xing Chengyong, Wu Shaowen, Ma Min, Tian Jian

机构信息

School of Materials Science and Engineering, Shandong University of Science and Technology, Qingdao, 266590, China.

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

出版信息

Mater Horiz. 2024 Jul 15;11(14):3345-3351. doi: 10.1039/d3mh02185h.

Abstract

The large inherent flexibility and highly modular nature of metal-organic frameworks (MOFs) make them ideal candidates for the study of negative thermal expansion (NTE). Among diverse organic ligands, the biphenyl unit, which can unrestrictedly rotate along its C-C single bond, can largely enhance the structural flexibility. Herein, we explored the thermal expansion behaviors of four indium biphenyl tetracarboxylates (BPTCs). Owing to the different dihedral angles of BPTC ligands and coordination mode of In, they show distinct topologies: InOF-1 (), InOF-2 (), InOF-12 () and InOF-13 (). Intriguingly, it is found that the thermal expansion is highly dependent on the specific topology. The MOFs featuring mononuclear nodes show normal positive thermal expansion (PTE), and the magnitudes of coefficients follow the trend of InOF-2 < InOF-12 < InOF-13, inversely related to averaged molecular volumes. In contrast, the InOF-1, composed of a 1D chain of corner-shared InO octahedrons, shows pronounced NTE. Detailed high-resolution synchrotron powder X-ray diffraction and lattice dynamic analyses shed light on the fact that NTE in the InOF-1 is a synergy effect of the spring-like distortion of the inorganic 1D helical chain and twisting of the BPTC ligands. The present work shows how the topological arrangement of building blocks governs the thermal expansion behaviors.

摘要

金属有机框架材料(MOFs)固有的高度灵活性和高度模块化的性质使其成为研究负热膨胀(NTE)的理想候选材料。在各种有机配体中,联苯单元可沿其碳 - 碳单键无限制旋转,这可大大增强结构的灵活性。在此,我们研究了四种铟联苯四羧酸盐(BPTCs)的热膨胀行为。由于BPTC配体的二面角和铟的配位模式不同,它们呈现出不同的拓扑结构:InOF - 1()、InOF - 2()、InOF - 12()和InOF - 13()。有趣的是,发现热膨胀高度依赖于特定的拓扑结构。具有单核节点的MOFs表现出正常的正热膨胀(PTE),系数大小遵循InOF - 2 < InOF - 12 < InOF - 13的趋势,与平均分子体积呈反比。相比之下,由角共享InO八面体的一维链组成的InOF - 1表现出明显的NTE。详细的高分辨率同步辐射粉末X射线衍射和晶格动力学分析揭示了InOF - 1中的NTE是无机一维螺旋链的弹簧状畸变和BPTC配体扭曲的协同效应。目前的工作展示了构建单元的拓扑排列如何控制热膨胀行为。

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