超分子化学
纳米技术
纳米材料
混合材料
合理设计
多金属氧酸盐
共价键
材料科学
模块化(生物学)
设计要素和原则
碳纳米管
化学
计算机科学
分子
有机化学
催化作用
生物
软件工程
遗传学
作者
Jamie M. Cameron,G. Guillemot,Theodor Galambos,Sharad S. Amin,Elizabeth Hampson,Kevin Mall Haidaraly,Graham N. Newton,Guillaume Izzet
摘要
solubility, high structural modularity and tuneable properties/reactivity). Specifically, the capacity for POMs to be covalently coupled to an effectively limitless range of organic moieties has opened exciting new avenues in their rational design, while the combination of distinct organic and inorganic components facilitates the formation of complex molecular architectures and the emergence of new, unique functionalities. Here, we present a detailed discussion of the design opportunities afforded by hybrid POMs, where fine control over their size, topology and their covalent and non-covalent interactions with a range of other species and/or substrates makes them ideal building blocks in the assembly of a broad range of supramolecular hybrid nanomaterials. We review both direct self-assembly approaches (encompassing both solution and solid-state approaches) and the non-covalent interactions of hybrid POMs with a range of suitable substrates (including cavitands, carbon nanotubes and biological systems), while giving key consideration to the underlying driving forces in each case. Ultimately, this review aims to demonstrate the enormous potential that the rational assembly of hybrid POM clusters shows for the development of next-generation nanomaterials with applications in areas as diverse as catalysis, energy-storage and molecular biology, while providing our perspective on where the next major developments in the field may emerge.
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