Wang Jiangyan, Wan Jiawei, Yang Nailiang, Li Quan, Wang Dan
State Key Laboratory of Biochemical Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, China.
University of Chinese Academy of Sciences, Beijing, China.
Nat Rev Chem. 2020 Mar;4(3):159-168. doi: 10.1038/s41570-020-0161-8. Epub 2020 Feb 11.
A hollow multishell structure (HoMS) is an assembly of multiple shells with voids between the individual shells. Accessible through nanopores, these voids represent separate reaction environments in the same assembly, such that HoMSs have unique properties that are applicable to diverse fields. These applications have mostly exploited the large specific surface area, high loading capacity and/or buffering effect of HoMSs, benefiting the mass/energy transmission and effective surface area. In comparison, the temporal-spatial ordering of reactions, as well as the dynamic smart behaviour of HoMSs, have been less explored but are also emphasized in this Perspective. We first describe the synthesis of HoMSs and the thermodynamic and kinetic aspects of their formation. We then consider the composition and structural functionalization of each shell within a HoMS and then highlight how these enable applications based on temporal-spatial ordering and dynamic smart behaviour.
中空多壳结构(HoMS)是由多个壳层组成的组件,各个壳层之间存在空隙。这些空隙可通过纳米孔进入,代表了同一组件中不同的反应环境,因此HoMS具有适用于不同领域的独特性质。这些应用大多利用了HoMS的大比表面积、高负载能力和/或缓冲效应,有利于质量/能量传输和有效表面积。相比之下,反应的时空有序性以及HoMS的动态智能行为虽较少被探索,但在本综述中也得到了强调。我们首先描述HoMS的合成及其形成的热力学和动力学方面。然后,我们考虑HoMS内每个壳层的组成和结构功能化,接着重点介绍这些如何实现基于时空有序性和动态智能行为的应用。