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抗电偶反应的发现、机制及应用

Discovery, Mechanism, and Application of Antigalvanic Reaction.

作者信息

Gan Zibao, Xia Nan, Wu Zhikun

机构信息

Key Laboratory of Materials Physics, Anhui Key Laboratory of Nanomaterials and Nanotechnology, CAS Center for Excellence in Nanoscience , Institute of Solid State Physics, Chinese Academy of Sciences , Hefei 230031 , China.

Institute of Physical Science and Information Technology , Anhui University , Hefei 230601 , China.

出版信息

Acc Chem Res. 2018 Nov 20;51(11):2774-2783. doi: 10.1021/acs.accounts.8b00374. Epub 2018 Oct 31.

Abstract

Among many outstanding findings associated with the quantum size effect, one of the most exciting is the discovery of the antigalvanic reaction (AGR), which is the opposite of the classic galvanic reaction (GR) that has a history of nearly 240 years. The GR, named after Italian scientist Luigi Galvani, involves the spontaneous reduction of a noble-metal cation by a less noble metal in solution driven by the difference in electrochemical potentials. Classic galvanic reduction has been widely applied and has recently received particular interest in nanoscience and nanotechnology. However, the opposite of GR, that is, reduction of metal ions by less reactive (or more noble) metals, has long been regarded as a virtual impossibility until the recent surprising findings regarding atomically precise ultrasmall metal nanoparticles (nanoclusters), which bridge the gap between metal atoms (complexes) and metal nanocrystals and provide opportunities for novel scientific findings due to their well-defined compositions and structures. The AGR is significant not only because it is the opposite of the classic galvanic theory but also because it opens extensive applications in a large range of fields, such as sensing and tuning the compositions, structures, and properties of nanostructures that are otherwise difficult to obtain. Starting with the proposal of the general AGR concept in 2012 by Wu, a new era began, in which AGR received widespread attention and was extensively studied. After years of effort, great advances have been achieved in the research on AGR, which will be reviewed below. In this Account, we first provide a short introduction to the AGR concept and then discuss the driving force of the AGR together with the effecting factors, including the ligand, particle size, solvent, metal ion precursor, and ion dose. Subsequently, the application of the AGR in engineering atomically precise alloy (bimetallic and trimetallic) and monometallic nanoclusters is described, and tuning the properties of the parent nanoclusters is also included. In particular, four alloying modes (namely, (i) addition, (ii) replacement, (iii) replacement and structural transformation, and (iv) nonreplacement and structural transformation) associated with the AGR are discussed. After that, the applications of the AGR in metal ion sensing and antioxidation are reviewed. Finally, future prospects are discussed, and some challenging issues are presented at the end of this Account. It is expected that this Account will stimulate more scientific and technological interests in the AGR, and exciting progress in the understanding and application of the AGR will be made in the coming years.

摘要

在与量子尺寸效应相关的众多杰出发现中,最令人兴奋的之一是反电偶反应(AGR)的发现,它与有着近240年历史的经典电偶反应(GR)相反。GR以意大利科学家路易吉·伽伐尼的名字命名,涉及溶液中较不活泼的金属通过电化学势差自发还原贵金属阳离子。经典的电偶还原已得到广泛应用,并且最近在纳米科学和纳米技术领域受到特别关注。然而,GR的相反情况,即较不活泼(或更贵金属)的金属还原金属离子,长期以来一直被认为几乎是不可能的,直到最近关于原子精确的超小金属纳米颗粒(纳米团簇)的惊人发现,这些纳米颗粒弥合了金属原子(配合物)和金属纳米晶体之间的差距,并因其明确的组成和结构为新的科学发现提供了机会。AGR之所以重要,不仅因为它与经典电偶理论相反,还因为它在广泛的领域中开启了广泛的应用,例如传感以及调节纳米结构的组成、结构和性质,而这些纳米结构否则很难获得。自2012年吴提出一般AGR概念以来,一个新的时代开始了,在这个时代AGR受到了广泛关注并得到了广泛研究。经过多年的努力,AGR的研究取得了巨大进展,以下将对此进行综述。在本综述中,我们首先简要介绍AGR概念,然后讨论AGR的驱动力以及影响因素,包括配体、粒径、溶剂、金属离子前驱体和离子剂量。随后,描述了AGR在工程化原子精确合金(双金属和三金属)和单金属纳米团簇中的应用,还包括调节母体纳米团簇的性质。特别讨论了与AGR相关的四种合金化模式(即(i)添加、(ii)取代、(iii)取代和结构转变以及(iv)非取代和结构转变)。之后,综述了AGR在金属离子传感和抗氧化方面的应用。最后,讨论了未来前景,并在本综述末尾提出了一些具有挑战性的问题。预计本综述将激发对AGR更多的科学和技术兴趣,并且在未来几年在AGR的理解和应用方面将取得令人兴奋的进展。

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