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通过金纳米团簇的衍生化化学实现金属分子的多样化。

Diversification of Metallic Molecules through Derivatization Chemistry of Au Nanoclusters.

机构信息

Department of Chemical and Biomolecular Engineering, National University of Singapore, 4 Engineering Drive 4, Singapore 117585, Singapore.

出版信息

Acc Chem Res. 2021 Nov 16;54(22):4142-4153. doi: 10.1021/acs.accounts.1c00481. Epub 2021 Oct 28.

Abstract

Derivatization is the fine chemistry that can produce chemical compounds from similar precursors and has been widely used in the field of organic synthesis to achieve diversification of molecular properties and functionalities. Ligand-protected metal nanoclusters (NCs) are metallic molecules with a definite molecular formula, well-defined molecular structure, and molecular-like physical and chemical properties. Unlike organic compounds, which have almost infinite species, until now only hundreds of metal NC species have been discovered, and only a few of them have been structurally resolved. Therefore, the diversification of NC species and functions is highly desirable in nanoscience and nanochemistry. As an efficient approach for generating a library of compounds from a given precursor, derivatization chemistry is not only applicable in producing new organic compounds but also a promising strategy for generating new metal NC species with intriguing properties and functions. The key to the derivatization of metal NCs is to design an efficient derivatization reaction suitable for metal NCs and spontaneously realize the customization of this special macromolecule (metallic molecule) at the atomic and molecular level.In this Account, we use the flagship thiolate-protected NC AuSR (SR denotes a thiolate ligand) as a model to illustrate the derivatization chemistry of metal NCs. In the past 3 years we have developed various derivatization reactions of AuSR, including isomerization, redox, ligand addition, alloying, and self-assembly reactions. We discuss the mechanisms that govern these reactions to realize precise customization of the NC structure, size, surface, composition, and interactions. It is particularly noteworthy that advanced techniques such as real-time electrospray ionization mass spectrometry and NMR spectroscopy enable us to have an atomic- and molecular-level understanding of the reaction mechanisms, which will further promote our efforts to design derivatization reactions for metal NCs. Through these delicate derivatization reactions, we can produce AuSR derivatives with new physical, chemical, and biological properties, including electronic structures, photoluminescence, surface reactivity, and antimicrobial properties. Finally, we provide our perspectives on the opportunities and challenges of metal NC derivatization.The derivatization chemistry of metal NCs can not only diversify the properties and functions of metal NCs but also help us understand the structure-property relationship and design principles of metal nanomaterials, which will help advance the research frontier of nanoscience toward atomic precision.

摘要

衍生化是一种精细化学,可以从类似的前体中产生化合物,并已广泛应用于有机合成领域,以实现分子性质和功能的多样化。配体保护的金属纳米团簇(NCs)是具有确定分子式、明确分子结构和类似分子的物理和化学性质的金属分子。与有机化合物不同,有机化合物的种类几乎是无限的,到目前为止,仅发现了数百种金属 NC 物种,其中只有少数几种具有结构分辨率。因此,在纳米科学和纳米化学中,非常需要实现 NC 物种和功能的多样化。作为一种从给定前体制备化合物文库的有效方法,衍生化化学不仅适用于生成新的有机化合物,而且也是生成具有有趣性质和功能的新型金属 NC 物种的有前途的策略。金属 NC 衍生化的关键是设计一种适用于金属 NC 的高效衍生化反应,并在原子和分子水平上自发实现这种特殊大分子(金属分子)的定制化。在本综述中,我们以标志性的硫醇保护的 NC AuSR(SR 表示硫醇配体)为例,说明了金属 NC 的衍生化化学。在过去的 3 年中,我们开发了各种 AuSR 的衍生化反应,包括异构化、氧化还原、配体加成、合金化和自组装反应。我们讨论了控制这些反应的机制,以实现 NC 结构、尺寸、表面、组成和相互作用的精确定制。值得特别注意的是,实时电喷雾电离质谱和 NMR 光谱等先进技术使我们能够在原子和分子水平上理解反应机制,这将进一步推动我们为金属 NC 设计衍生化反应的努力。通过这些精细的衍生化反应,我们可以产生具有新的物理、化学和生物学性质的 AuSR 衍生物,包括电子结构、光致发光、表面反应性和抗菌性能。最后,我们提供了对金属 NC 衍生化的机遇和挑战的看法。金属 NC 的衍生化化学不仅可以使金属 NC 的性质和功能多样化,还有助于我们理解金属纳米材料的结构-性质关系和设计原则,这将有助于推动纳米科学研究前沿朝着原子精度的方向发展。

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