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Nanocrystalline materials: recent advances in crystallographic characterization techniques

机译:纳米晶体材料:晶体学表征技术的最新进展

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摘要

Most properties of nanocrystalline materials are shape-dependent, providing their exquisite tunability in optical, mechanical, electronic and catalytic properties. An example of the former is localized surface plasmon resonance (LSPR), the coherent oscillation of conduction electrons in metals that can be excited by the electric field of light; this resonance frequency is highly dependent on both the size and shape of a nanocrystal. An example of the latter is the marked difference in catalytic activity observed for different Pd nanoparticles. Such examples highlight the importance of particle shape in nanocrystalline materials and their practical applications. However, one may ask ‘how are nanoshapes created?’, ‘how does the shape relate to the atomic packing and crystallography of the material?’, ‘how can we control and characterize the external shape and crystal structure of such small nanocrystals?’. This feature article aims to give the reader an overview of important techniques, concepts and recent advances related to these questions. Nucleation, growth and how seed crystallography influences the final synthesis product are discussed, followed by shape prediction models based on seed crystallography and thermodynamic or kinetic parameters. The crystallographic implications of epitaxy and orientation in multilayered, core-shell nanoparticles are overviewed, and, finally, the development and implications of novel, spatially resolved analysis tools are discussed.
机译:纳米晶体材料的大多数性能取决于形状,在光学,机械,电子和催化性能方面具有出色的可调性。前者的一个例子是局部表面等离振子共振(LSPR),它是金属中传导电子的相干振荡,可以被光的电场激发。该共振频率高度取决于纳米晶体的尺寸和形状。后者的一个例子是对于不同的Pd纳米颗粒观察到的催化活性明显不同。这样的例子突出了纳米晶体材料中颗粒形状的重要性及其实际应用。但是,人们可能会问:“纳米形状是如何产生的?”,“形状与材料的原子堆积和晶体学有何关系?”,“我们如何控制和表征这种小纳米晶体的外部形状和晶体结构?” 。这篇专题文章旨在为读者提供与这些问题相关的重要技术,概念和最新进展的概述。讨论了成核,生长以及晶种如何影响最终合成产物,然后讨论了基于晶种和热力学或动力学参数的形状预测模型。概述了外延和取向在多层核壳纳米粒子中的晶体学意义,最后讨论了新型的,空间分辨的分析工具的发展和意义。

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