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Colloidal Magnetic Heterostructured Nanocrystals with Asymmetric Topologies: Seeded-Growth Synthetic Routes and Formation Mechanisms

机译:具有不对称拓扑结构的胶体磁性异质结构纳米晶体:种子生长的合成途径和形成机理

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Colloidal inorganic nanocrystals, free-standing crystalline nanostructures generated and processed in solution phase, represent an important class of advanced nanoscale materials owing to the flexibility with which their physical–chemical properties can be controlled through synthetic tailoring of their compositional, structural and geometric features and the versatility with which they can be integrated in technological fields as diverse as optoelectronics, energy storage/ conversion/production, catalysis and biomedicine. In recent years, building upon mechanistic knowledge acquired on the thermodynamic and kinetic processes that underlie nanocrystal evolution in liquid media, synthetic nanochemistry research has made impressive advances, opening new possibilities for the design, creation and mastering of increasingly complex “colloidal molecules”, in which nanocrystal modules of different materials are clustered together via solid-state bonding interfaces into free-standing, easily processable multifunctional nanocomposite systems. This Review will provide a glimpse into this fast-growing research field by illustrating progress achieved in the wet-chemical development of last-generation breeds of all-inorganic heterostructured nanocrystals (HNCs) in asymmetric non-onionlike geometries, inorganic analogues of polyfunctional organic molecules, in which distinct nanoscale crystalline modules are interconnected in hetero-dimer, hetero-oligomer and anisotropic multidomain architectures via epitaxial heterointerfaces of limited extension. The focus will be on modular HNCs entailing at least one magnetic material component combined with semiconductors and/or metals, which hold potential for generating enhanced or unconventional magnetic properties, while offering diversified or even new chemical-physical properties and functional capabilities. The available toolkit of synthetic strategies, all based on the manipulation of seeded-growth techniques, will be described, revisited and critically interpreted within the framework of the currently understood mechanisms of colloidal heteroepitaxy.
机译:胶态无机纳米晶体是在溶液相中生成和加工的自立式晶体纳米结构,代表了一类重要的高级纳米级材料,这是由于可以通过合成调整其组成,结构和几何特征来控制其物理化学性质的灵活性。它们可以集成在光电子,能量存储/转换/生产,催化和生物医学等各种技术领域中的多功能性。近年来,基于在液态介质中纳米晶体演化基础的热力学和动力学过程中获得的机械知识,合成纳米化学研究取得了令人瞩目的进展,为设计,创建和掌握越来越复杂的“胶体分子”开辟了新的可能性。通过固态键合界面将不同材料的纳米晶体模块聚集在一起,形成独立的,易于加工的多功能纳米复合材料系统。这篇综述将通过举例说明在不对称非洋葱状几何形状,多功能有机分子的无机类似物的上一代全无机异质结构纳米晶体(HNC)的湿法化学开发中取得的进展,从而窥见这个快速发展的研究领域。 ,其中不同的纳米级晶体模块通过有限扩展的外延异质界面以异二聚体,异低聚物和各向异性多域结构互连。重点将放在模块化HNC上,该模块至少需要一种与半导体和/或金属结合的磁性材料成分,具有产生增强的或非常规的磁性的潜力,同时提供多样化甚至新的化学物理性质和功能。合成策略的可用工具包,全部基于种子生长技术的操作,将在目前了解的胶体异外延机制的框架内进行描述,重新审视和严格解释。

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