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基于二维材料的配位驱动的混合纳米结构的分级组装。

Coordination-Driven Hierarchical Assembly of Hybrid Nanostructures Based on 2D Materials.

机构信息

Laboratory of Advanced Materials (MOE), Department of Chemical Engineering, Tsinghua University, Beijing, 100084, China.

出版信息

Small. 2020 Apr;16(15):e1902779. doi: 10.1002/smll.201902779. Epub 2019 Sep 9.

Abstract

2D materials have received tremendous scientific and engineering interests due to their remarkable properties and broad-ranging applications such as energy storage and conversion, catalysis, biomedicine, electronics, and so forth. To further enhance their performance and endow them with new functions, 2D materials are proposed to hybridize with other nanostructured building blocks, resulting in hybrid nanostructures with various morphologies and structures. The properties and functions of these hybrid nanostructures depend strongly on the interfacial interactions between 2D materials and other building blocks. Covalent and coordination bonds are two strong interactions that hold high potential in constructing these robust hybrid nanostructures based on 2D materials. However, most 2D materials are chemically inert, posing problems for the covalent assembly with other building blocks. There are usually coordination atoms in most of 2D materials and their derivatives, thus coordination interaction as a strong interfacial interaction has attracted much attention. In this review, recent progress on the coordination-driven hierarchical assembly based on 2D materials is summarized, focusing on the synthesis approaches, various architectures, and structure-property relationship. Furthermore, insights into the present challenges and future research directions are also presented.

摘要

二维材料因其显著的性能和广泛的应用,如储能和转换、催化、生物医学、电子等,引起了科学界和工程界的极大兴趣。为了进一步提高它们的性能并赋予它们新的功能,二维材料被提议与其他纳米结构的构建块进行杂交,从而产生具有各种形态和结构的杂交纳米结构。这些杂交纳米结构的性质和功能强烈依赖于二维材料和其他构建块之间的界面相互作用。共价键和配位键是两种具有很大潜力的强相互作用,可用于构建基于二维材料的这种坚固的杂交纳米结构。然而,大多数二维材料化学惰性很高,这给与其他构建块的共价组装带来了问题。大多数二维材料及其衍生物中通常都有配位原子,因此配位相互作用作为一种强界面相互作用引起了广泛关注。本综述总结了基于二维材料的配位驱动的分级组装的最新进展,重点介绍了合成方法、各种结构和结构-性能关系。此外,还对当前的挑战和未来的研究方向提出了见解。

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