Suppr超能文献

原子精确的金属纳米团簇:稳定尺寸与光学性质

Atomically precise metal nanoclusters: stable sizes and optical properties.

作者信息

Jin Rongchao

机构信息

Department of Chemistry, Carnegie Mellon University, Pittsburgh, Pennsylvania, USA.

出版信息

Nanoscale. 2015 Feb 7;7(5):1549-65. doi: 10.1039/c4nr05794e.

Abstract

Controlling nanoparticles with atomic precision has long been a major dream of nanochemists. Breakthroughs have been made in the case of gold nanoparticles, at least for nanoparticles smaller than ∼3 nm in diameter. Such ultrasmall gold nanoparticles indeed exhibit fundamentally different properties from those of the plasmonic counterparts owing to the quantum size effects as well as the extremely high surface-to-volume ratio. These unique nanoparticles are often called nanoclusters to distinguish them from conventional plasmonic nanoparticles. Intense work carried out in the last few years has generated a library of stable sizes (or stable stoichiometries) of atomically precise gold nanoclusters, which are opening up new exciting opportunities for both fundamental research and technological applications. In this review, we have summarized the recent progress in the research of thiolate (SR)-protected gold nanoclusters with a focus on the reported stable sizes and their optical absorption spectra. The crystallization of nanoclusters still remains challenging; nevertheless, a few more structures have been achieved since the earlier successes in Au102(SR)44, Au25(SR)18 and Au38(SR)24 nanoclusters, and the newly reported structures include Au20(SR)16, Au24(SR)20, Au28(SR)20, Au30S(SR)18, and Au36(SR)24. Phosphine-protected gold and thiolate-protected silver nanoclusters are also briefly discussed in this review. The reported gold nanocluster sizes serve as the basis for investigating their size dependent properties as well as the development of applications in catalysis, sensing, biological labelling, optics, etc. Future efforts will continue to address what stable sizes are existent, and more importantly, what factors determine their stability. Structural determination and theoretical simulations will help to gain deep insight into the structure-property relationships.

摘要

长期以来,以原子精度控制纳米颗粒一直是纳米化学家的一个主要梦想。在金纳米颗粒方面已经取得了突破,至少对于直径小于约3nm的纳米颗粒而言。由于量子尺寸效应以及极高的表面体积比,这种超小金纳米颗粒确实表现出与等离子体对应物截然不同的性质。这些独特的纳米颗粒通常被称为纳米团簇,以将它们与传统的等离子体纳米颗粒区分开来。在过去几年中开展的大量工作已经产生了一系列具有原子精确结构的稳定尺寸(或稳定化学计量比)的金纳米团簇,这为基础研究和技术应用都开辟了新的令人兴奋的机会。在这篇综述中,我们总结了硫醇盐(SR)保护的金纳米团簇的研究进展,重点关注已报道的稳定尺寸及其光学吸收光谱。纳米团簇的结晶仍然具有挑战性;然而,自从早期成功制备出Au102(SR)44、Au25(SR)18和Au38(SR)24纳米团簇以来,又获得了一些其他结构,新报道的结构包括Au20(SR)16、Au24(SR)20、Au28(SR)20、Au30S(SR)18和Au36(SR)24。本文还简要讨论了膦保护的金纳米团簇和硫醇盐保护的银纳米团簇。已报道的金纳米团簇尺寸为研究其尺寸依赖性性质以及开发催化、传感、生物标记、光学等应用奠定了基础。未来的工作将继续致力于确定存在哪些稳定尺寸,更重要的是,哪些因素决定了它们的稳定性。结构测定和理论模拟将有助于深入了解结构与性质之间的关系。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验