4.5 Review

Self-assembled inorganic chiral superstructures

期刊

NATURE REVIEWS CHEMISTRY
卷 6, 期 2, 页码 125-145

出版社

NATURE PORTFOLIO
DOI: 10.1038/s41570-021-00350-w

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资金

  1. Strategic Priority Research Program of Chinese Academy of Sciences [XDB36000000]
  2. National Key Basic Research Program of China [2016YFA0200700]
  3. National Natural Science Foundation of China [92056204, 21721002, 21805188]
  4. Frontier Science Key Project of Chinese Academy of Sciences [QYZDJ-SSW-SLH038]

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Controlled assembly of inorganic nanoparticles into higher-order structures with collective functionalities, particularly chiral superstructures, has attracted significant attention due to their unique chiroptical properties and potential applications. Various strategies have been developed to prepare self-assembled inorganic chiral superstructures based on the preference of building blocks and external factors. Compared to organic counterparts, these inorganic chiral superstructures exhibit superior optical activity.
Controlled assembly of inorganic nanoparticles with different compositions, sizes and shapes into higher-order structures of collective functionalities is a central pursued objective in chemistry, physics, materials science and nanotechnology. The emerging chiral superstructures, which break spatial symmetries at the nanoscale, have attracted particular attention, owing to their unique chiroptical properties and potential applications in optics, catalysis, biology and so on. Various bottom-up strategies have been developed to build inorganic chiral superstructures based on the intrinsic configurational preference of the building blocks, external fields or chiral templates. Self-assembled inorganic chiral superstructures have demonstrated significant superior optical activity from the strong electric/magnetic coupling between the building blocks, as compared with the organic counterparts. In this Review,we discuss recent progress in preparing self-assembled inorganic chiral superstructures, with an emphasis on the driving forces that enable symmetry breaking during the assembly process. The chiroptical properties and applications are highlighted and a forward-looking trajectory of where research efforts should be focused is discussed.

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