Engineering Rings in Network Materials

Andreas Neophytou, Dwaipayan Chakrabarti
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Abstract

Network materials can be crystalline or amorphous solids, or even liquids, where typically directional interactions link the building blocks together, resulting in a physical representation of a mathematical object, called a graph or equivalently a network. Rings, which correspond to a cyclic path in the underlying network, consisting of a sequence of vertices and edges, are medium-range structural motifs in the physical space. This Perspective presents an overview of recent studies, which showcase the importance of rings in the emergence of crystalline order as well as in phase transitions between two liquid phases for certain network materials, comprised of colloidal or molecular building blocks. These studies demonstrate how the selection of ring sizes can be exploited for programming self-assembly of colloidal open crystals with an underlying network and elucidate rings as a vehicle for entanglement that distinguishes the two liquid phases of different densities involved in liquid–liquid phase transitions of network liquids with local tetrahedral order. In this context, an outlook is presented for engineering rings in network materials composed of colloidal and molecular building blocks, with implications also for metal-organic frameworks, which have been extensively studied as porous crystals, but, more recently, as network-forming liquids and glasses as well.

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网络材料工程环
网络材料可以是结晶或无定形固体,甚至是液体,其中典型的定向相互作用将构件连接在一起,形成数学对象的物理表示,称为图或等同于网络。环对应于底层网络中的循环路径,由一系列顶点和边组成,是物理空间中的中等范围结构图案。本 "视角 "概述了近期的研究,这些研究展示了环在某些由胶体或分子构件组成的网络材料的结晶秩序以及两种液相之间的相变中的重要性。这些研究证明了如何利用环尺寸的选择来编程自组装具有底层网络的胶体开放晶体,并阐明了环作为纠缠的载体,可在具有局部四面体秩序的网络液体的液-液相变中区分不同密度的两种液相。在此背景下,我们展望了由胶体和分子构件组成的网络材料中的工程环,以及对金属有机框架的影响,这些框架已被广泛研究为多孔晶体,但最近也被研究为网络形成的液体和玻璃。
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