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通过机械化学楔入晶体以制备晶体框架纳米片。

Wedging crystals to fabricate crystalline framework nanosheets via mechanochemistry.

作者信息

Fan Yun, Shen Yu, Zhang Jia, Zhang Xinglong, Zhang Zeqi, Li Hongfeng, Peng Yong, Weng Jiena, Xie Ruijie, Zhang Wenlei, Han Yu, Xiao Yawen, Zhang Suoying, Zheng Bing, Zhang Hao-Li, Li Sheng, Huang Wei, Huo Fengwei, Zhang Weina

机构信息

Key Laboratory of Flexible Electronics (KLOFE) & Institute of Advanced Materials (IAM), Nanjing Tech University, 30 South Puzhu Road, Nanjing, 211816, China.

Institute of Advanced Materials, Nanjing University of Posts & Telecommunications, Nanjing, 210023, China.

出版信息

Nat Commun. 2024 Aug 14;15(1):6973. doi: 10.1038/s41467-024-51177-0.

Abstract

Mechanochemistry studies the effect of mechanical force on chemical bonds, bringing opportunities for synthesizing alloys, ceramics, organics, polymers, and biomaterials. A vital issue of applying macro-scale mechanical force to manipulate crystal structures is finding ways to precisely adjust the force directions to break micro-scale target chemical bonds. Inspired by a common technique of driving a wedge into the wood to make wood chopping much easier, a wedging strategy of splitting three-dimensional structured crystalline frameworks and then converting them to nanosheets was proposed, where specific molecules were wedged into crystalline frameworks to drive the directional transmission of mechanical force to break chemical bonds. As a result, various crystalline framework nanosheets including metal-organic framework nanosheets, covalent organic framework nanosheets, and coordination polymer nanosheets were fabricated. This wedging crystal strategy exhibits advantages of operability, flexibility and designability, and furthermore, it is expected to expand mechanochemistry applications in material preparation.

摘要

机械化学研究机械力对化学键的影响,为合金、陶瓷、有机物、聚合物和生物材料的合成带来了机遇。将宏观尺度的机械力应用于操纵晶体结构的一个关键问题是找到精确调整力的方向以打破微观尺度目标化学键的方法。受将楔子打入木材以使砍柴更容易这一常见技术的启发,提出了一种劈开三维结构化晶体框架然后将其转化为纳米片的楔入策略,即将特定分子楔入晶体框架以驱动机械力的定向传递来打破化学键。结果,制备出了包括金属有机框架纳米片、共价有机框架纳米片和配位聚合物纳米片在内的各种晶体框架纳米片。这种楔入晶体策略具有可操作性、灵活性和可设计性等优点,此外,有望扩展机械化学在材料制备中的应用。

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