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Synthesis of Metallic Nanocrystals: From Noble Metals to Base Metals

机译:金属纳米晶体的合成:从贵金属到贱金属

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摘要

Metallic nanocrystals exhibit superior properties to their bulk counterparts because of the reduced sizes, diverse morphologies, and controllable exposed crystal facets. Therefore, the fabrication of metal nanocrystals and the adjustment of their properties for different applications have attracted wide attention. One of the typical examples is the fabrication of nanocrystals encased with high-index facets, and research on their magnified catalytic activities and selections. Great accomplishment has been achieved within the field of noble metals such as Pd, Pt, Ag, and Au. However, it remains challenging in the fabrication of base metal nanocrystals such as Ni, Cu, and Co with various structures, shapes, and sizes. In this paper, the synthesis of metal nanocrystals is reviewed. An introduction is briefly given to the metal nanocrystals and the importance of synthesis, and then commonly used synthesis methods for metallic nanocrystals are summarized, followed by specific examples of metal nanocrystals including noble metals, alloys, and base metals. The synthesis of base metal nanocrystals is far from satisfactory compared to the tremendous success achieved in noble metals. Afterwards, we present a discussion on specific synthesis methods suitable for base metals, including seed-mediated growth, ligand control, oriented attachment, chemical etching, and Oswald ripening, based on the comprehensive consideration of thermodynamics, kinetics, and physical restrictions. At the end, conclusions are drawn through the prospect of the future development direction.
机译:金属纳米晶体由于其尺寸减小,形貌多样以及可控的裸露晶面,因此比其本体具有更好的性能。因此,金属纳米晶体的制备及其针对不同应用的性能调节已引起广泛关注。典型实例之一是包裹有高折射率小面的纳米晶体的制备,以及对其放大催化活性和选择的研究。在诸如Pd,Pt,Ag和Au的贵金属领域已经取得了巨大成就。然而,在诸如Ni,Cu和Co的具有各种结构,形状和尺寸的贱金属纳米晶体的制造中仍然具有挑战性。本文综述了金属纳米晶体的合成。简要介绍了金属纳米晶体及其合成的重要性,然后概述了金属纳米晶体的常用合成方法,然后列举了包括贵金属,合金和贱金属在内的金属纳米晶体的具体实例。与在贵金属中获得的巨大成功相比,贱金属纳米晶体的合成远远不能令人满意。之后,我们在综合考虑热力学,动力学和物理限制的基础上,讨论了适用于贱金属的特定合成方法,包括种子介导的生长,配体控制,定向附着,化学蚀刻和奥斯瓦尔德成熟。最后,通过对未来发展方向的展望得出结论。

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