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模板法合成具有非常规晶体结构的贵金属纳米晶体及其催化应用。

Template Synthesis of Noble Metal Nanocrystals with Unusual Crystal Structures and Their Catalytic Applications.

机构信息

Center for Programmable Materials, School of Materials Science and Engineering, Nanyang Technological University , 50 Nanyang Avenue, 639798 Singapore.

出版信息

Acc Chem Res. 2016 Dec 20;49(12):2841-2850. doi: 10.1021/acs.accounts.6b00527. Epub 2016 Dec 8.

Abstract

Noble metal nanocrystals own high chemical stability, unique plasmonic and distinctive catalytic properties, making them outstanding in many applications. However, their practical applications are limited by their high cost and scarcity on the earth. One promising strategy to solve these problems is to boost their catalytic performance in order to reduce their usage amount. To realize this target, great research efforts have been devoted to the size-, composition-, shape- and/or architecture-controlled syntheses of noble metal nanocrystals during the past two decades. Impressively, recent experimental studies have revealed that the crystal structure of noble metal nanocrystals can also significantly affect their physicochemical properties, such as optical, magnetic, catalytic, mechanical, electrical and electronic properties. Therefore, besides the well-established size, composition, shape, and architecture control, the rise of crystal structure-controlled synthesis of noble metal nanocrystals will open up new opportunities to further improve their functional properties, and thus promote their potential applications in energy conversion, catalysis, biosensing, information storage, surface enhanced Raman scattering, waveguide, near-infrared photothermal therapy, controlled release, bioimaging, biomedicine, and so on. In this Account, we review the recent research progress on the crystal structure control of noble metal nanocrystals with a template synthetic approach and their crystal structure-dependent catalytic properties. We first describe the template synthetic methods, such as epitaxial growth and galvanic replacement reaction methods, in which a presynthesized noble metal nanocrystal with either new or common crystal structure is used as the template to direct the growth of unusual crystal structures of other noble metals. Significantly, the template synthetic strategy described here provides an efficient, simple and straightforward way to synthesize unusual crystal structures of noble metal nanocrystals, which might not be easily synthesized by commonly used chemical synthesis. To be specific, by using the epitaxial growth method, a series of noble metal nanocrystals with unusual crystal structures has been obtained, such as hexagonal close-packed Ag, 4H Ag, Pd, Pt, Ir, Rh, Os, and Ru, and face-centered cubic Ru nanostructures. Meanwhile, the galvanic replacement reaction method offers an efficient way to synthesize noble metal alloy nanocrystals with unusual crystal structures, such as 4H PdAg, PtAg, and PtPdAg nanostructures. We then briefly introduce the stability of noble metal nanocrystals with unusual crystal structures. After that, we demonstrate the catalytic applications of the resultant noble metal nanocrystals with unusual crystal structures toward different chemical reactions like hydrogen evolution reaction, hydrogen oxidation reaction and organic reactions. The relationship between crystal structures of noble metal nanocrystals and their catalytic performances is discussed. Finally, we summarize the whole paper, and address the current challenges and future opportunities for the template synthesis of noble metal nanocrystals with unusual crystal structures. We expect that this Account will promote the crystal structure-controlled synthesis of noble metal nanocrystals, which can provide a new way to further improve their advanced functional properties toward their practical applications.

摘要

贵金属纳米晶体具有高化学稳定性、独特的等离子体和独特的催化特性,在许多应用中表现出色。然而,它们的实际应用受到其高成本和地球上稀缺性的限制。解决这些问题的一个有前途的策略是提高它们的催化性能,以减少它们的使用量。为了实现这一目标,在过去的二十年中,人们致力于研究贵金属纳米晶体的尺寸、组成、形状和/或结构控制合成。令人印象深刻的是,最近的实验研究表明,贵金属纳米晶体的晶体结构也可以显著影响它们的物理化学性质,例如光学、磁性、催化、机械、电气和电子性质。因此,除了尺寸、组成、形状和结构的控制之外,贵金属纳米晶体的晶体结构控制合成的兴起将为进一步提高它们的功能特性开辟新的机会,并促进它们在能量转换、催化、生物传感、信息存储、表面增强拉曼散射、波导、近红外光热疗、控制释放、生物成像、生物医学等方面的潜在应用。在本账目中,我们综述了模板合成方法在贵金属纳米晶体晶体结构控制方面的最新研究进展及其晶体结构依赖性催化特性。我们首先描述了模板合成方法,例如外延生长和电替换反应方法,其中使用预先合成的具有新的或常见晶体结构的贵金属纳米晶体作为模板来指导其他贵金属的不常见晶体结构的生长。重要的是,这里描述的模板合成策略提供了一种高效、简单和直接的方法来合成贵金属纳米晶体的不常见晶体结构,而这些晶体结构可能不容易通过常用的化学合成来合成。具体来说,通过使用外延生长方法,已经获得了一系列具有不常见晶体结构的贵金属纳米晶体,例如六方密堆积 Ag、4H Ag、Pd、Pt、Ir、Rh、Os 和 Ru,以及面心立方 Ru 纳米结构。同时,电替换反应方法提供了一种高效的方法来合成具有不常见晶体结构的贵金属合金纳米晶体,例如 4H PdAg、PtAg 和 PtPdAg 纳米结构。然后,我们简要介绍了具有不常见晶体结构的贵金属纳米晶体的稳定性。之后,我们展示了所得具有不常见晶体结构的贵金属纳米晶体在不同化学反应(如析氢反应、氢氧化反应和有机反应)中的催化应用。讨论了贵金属纳米晶体的晶体结构与其催化性能之间的关系。最后,我们总结了整篇论文,并讨论了用于合成具有不常见晶体结构的贵金属纳米晶体的模板合成的当前挑战和未来机遇。我们期望本账目的内容将促进贵金属纳米晶体的晶体结构控制合成,为进一步提高其先进功能特性以满足实际应用需求提供新途径。

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