Emergent Research Trends on the Structural Relaxation Dynamics of Molecular Clusters: From Structure-Property Relationship to New Function Prediction.

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Binghui Xue, Yuyan Lai, Linkun Cai, Yuan Liu, Jia-Fu Yin, Panchao Yin
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引用次数: 0

Abstract

ConspectusMolecular clusters (MCs) are monodispersed, precisely defined ensembles of atom collections featured with shape-persistent architectures that can deliver certain functions independently. Their molecular compositions and surface functionalities can be tailored feasibly in a predefined manner, and they can be applied as basic structural units to be engineered into materials with desirable hierarchical structures and enriched functions. The chemical systems also offer great opportunities for the design and fabrication of soft structural materials without the chain topologies of polymers. The bulks of MC assemblies demonstrate viscoelasticity that is used to be considered as the unique feature of polymers, while the MC systems are distinct from polymers since their elasticities are resilient even at temperatures 100 K above their glass transition temperatures. The understanding of their anomalous viscoelasticity and the extended studies of general structure-property relationships are desired for the development of new chemical systems for emergent functions and the possibilities to resolve the intrinsic trade-offs of traditional materials.Meanwhile, general macroscopic functions or properties of materials are related to the transportation of mass, momentum, and/or energy, and they are basically realized or directed by the motions of structural units at different length scales. Structural relaxation dynamics research is critical in quantifying motions ranging from fast bond deformation, bond break/formation, and diffusion of ions and particles to the cooperative motions of structure units. Due to the advancement of measurement technology for relaxation dynamics (e.g., quasi-elastic scattering and broadband dielectric spectroscopy), the structural relaxation dynamics of MC materials have been probed for the first time, and their multiple relaxation modes across several temporal scales were systematically studied to bridge the correlation between molecular structures and macroscopic functions. The fingerprint information from dynamics studies, e.g., the temperature dependence of relaxation time and certain property, e.g., ion conductivity, was proposed to quantify the structure-property relationship, and the microscopic mechanism on the mechanical properties, ion conduction, and gas absorption and separation of MC materials can be fully understood.In this Account, to elucidate the uniqueness of MC materials, especially in comparison with polymers, four topics are mainly summarized: structural features, relaxation dynamics characterization techniques, relaxation dynamics characteristics, and quantified understanding of the structure-property relationship. The capability for new function prediction from relaxation dynamics studies is also introduced, and the typical example in impact resistant materials is provided. The Account aims to prove the significance of relaxation dynamics characterization for material innovation, while it also confirms the potential of MCs for functional material fabrications.

Abstract Image

分子团簇结构松弛动力学的新兴研究趋势:从结构-性质关系到新功能预测。
Conspectus 分子簇(MC)是单分散、精确定义的原子集合体,具有形状持久的结构,可独立实现某些功能。它们的分子组成和表面功能可以通过预定义的方式进行定制,并可作为基本结构单元应用于具有理想分层结构和丰富功能的材料中。化学体系还为设计和制造没有聚合物链拓扑结构的软结构材料提供了巨大的机遇。MC 组合物的块体表现出粘弹性,这曾被视为聚合物的独特特征,而 MC 系统则有别于聚合物,因为即使在高于其玻璃转化温度 100 K 的温度下,它们的弹性仍具有韧性。了解它们的反常粘弹性并扩展对一般结构-性质关系的研究,是开发具有新兴功能的新化学体系的需要,也是解决传统材料内在权衡问题的可能性所在。同时,材料的一般宏观功能或性质与质量、动量和/或能量的传输有关,它们基本上是通过不同长度尺度上的结构单元运动来实现或引导的。结构弛豫动力学研究对于量化从快速键变形、键断裂/形成、离子和粒子扩散到结构单元协同运动的各种运动至关重要。由于弛豫动力学测量技术(如准弹性散射和宽带介电光谱)的进步,人们首次探测了 MC 材料的结构弛豫动力学,并系统地研究了它们在多个时间尺度上的多种弛豫模式,从而弥合了分子结构与宏观功能之间的相关性。为了阐明 MC 材料的独特性,特别是与高分子材料的比较,本文主要总结了四个方面的内容:结构特征、弛豫动力学表征技术、弛豫动力学特征以及结构与性能关系的量化理解。此外,还介绍了通过弛豫动力学研究预测新功能的能力,并提供了抗冲击材料中的典型实例。该开户绑定手机领体验金旨在证明弛豫动力学表征对材料创新的重要意义,同时也证实 MCs 在功能材料制造方面的潜力。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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