片状纳米粒子的合成与自组装

A. Kim, Lehan Yao, Falon C Kalutantirige, Shan Zhou, Qian Chen
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引用次数: 3

摘要

生物构建块(即蛋白质)将目标结构的信息编码到化学和形态补丁中,指导它们组装到对生物体至关重要的功能结构水平。从自然中学习,研究人员被人工类似物“斑块粒子”所吸引,它控制着斑块的几何形状,作为定向键位点。然而,与大量的微米尺度斑块颗粒研究不同,斑块颗粒的研究显示出复杂的组装结构和独特的行为,斑块纳米颗粒的研究仍然具有挑战性。在本章中,我们讨论了最近对补丁NP设计和合成策略的理解,以及它们组装行为的物理原理,这些是将补丁NP自组装成常规非补丁NP无法实现的目标结构的主要因素。我们进一步总结了斑块状NPs在外场、模拟和动力学控制下的自组装,以显示斑块状NPs带来的结构丰富度。斑块NP组件的结构和多组分特征是新颖的,因此表现出独特的光学,化学和机械性能,潜在地有助于催化剂,光子晶体,超材料以及基础纳米科学的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Patchy Nanoparticle Synthesis and Self-Assembly
Biological building blocks (i.e., proteins) are encoded with the information of target structure into the chemical and morphological patches, guiding their assembly into the levels of functional structures that are crucial for living organisms. Learning from nature, researchers have been attracted to the artificial analogues, “patchy particles,” which have controlled geometries of patches that serve as directional bonding sites. However, unlike the abundant studies of micron-scale patchy particles, which demonstrated complex assembly structures and unique behaviors attributed to the patches, research on patchy nanoparticles (NPs) has remained challenging. In the present chapter, we discuss the recent understandings on patchy NP design and synthesis strategies, and physical principles of their assembly behaviors, which are the main factors to program patchy NP self-assembly into target structures that cannot be achieved by conventional non-patched NPs. We further summarize the self-assembly of patchy NPs under external fields, in simulation, and in kinetically controlled assembly pathways, to show the structural richness patchy NPs bring. The patchy NP assembly is novel by their structures as well as the multicomponent features, and thus exhibits unique optical, chemical, and mechanical properties, potentially aiding applications in catalysts, photonic crystals, and metamaterials as well as fundamental nanoscience.
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