A comprehensive review of atomically precise metal nanoclusters with emergent photophysical properties towards diverse applications

IF 39 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Subarna Maity, Sarita Kolay, Sikta Chakraborty, Aarti Devi, Rashi and Amitava Patra
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Abstract

Atomically precise metal nanoclusters (MNCs) composed of a few to hundreds of metal atoms represent an emerging class of nanomaterials with a precise composition. With the size approaching the Fermi wavelength of electrons, their energy levels are well-separated, leading to molecule-like properties, like discrete single electronic transitions, tunable photoluminescence (PL), inherent structural anisotropy, and distinct redox behavior. Extensive synthetic efforts and electronic structure revelation have expanded applicability of MNCs in catalysis, optoelectronics, and biology. This review highlights the intriguing photophysical and electrochemical behaviors of MNCs and their regulatory parameters and applications. Initially, we present a brief discussion on the evolution of MNCs from gas-phase naked metal clusters to monolayer ligand-protected MNCs along with representative studies on their electronic structure. Due to their quantized molecular orbitals, they often exhibit PL, which can be regulated based on their capping ligands, number of atoms, crystal packing, presence of heterometal, and surrounding environment. Apart from PL, the relaxation pathways of MNCs on an ultrafast time scale have been extensively studied, which significantly differ from that of plasmonic metal nanoparticles. Moreover, their interaction with high-intensity light results in unique non-linear optical properties. The synergy between MNCs in a hierarchical self-assembled structure has been exploited to enhance their PL by precisely tuning their non-covalent interactions. Moreover, several NC-based hybrids have been designed to exhibit efficient electron or energy transfer in the photoexcited state. In the next section, we briefly focus on the redox behavior of NCs and facile electron transfer to suitable substrates, which result in enzyme-like catalytic activity. Utilizing these photophysical and electrochemical behaviors, NCs are widely employed in catalysis, optical sensing, and light-harvesting applications, which are also discussed in this review. In the final section, conclusions and open questions for the NC research community are included. This review will provide a comprehensive view of the emerging physicochemical properties of MNCs, thereby enabling an understanding for their precise modulation in future.

Abstract Image

Abstract Image

具有涌现光物理性质的原子精密金属纳米团簇的综合综述
由几个到数百个金属原子组成的原子精密金属纳米团簇(MNCs)代表了一类具有精确组成的新兴纳米材料。随着电子的尺寸接近费米波长,它们的能级被很好地分离,导致类似分子的性质,如离散的单电子跃迁、可调谐的光致发光(PL)、固有的结构各向异性和独特的氧化还原行为。广泛的合成努力和电子结构的揭示扩大了跨国公司在催化、光电子学和生物学方面的适用性。本文综述了MNCs有趣的光物理和电化学行为及其调控参数和应用。首先,我们简要讨论了MNCs从气相裸金属簇到单层配体保护MNCs的演变,并对其电子结构进行了代表性研究。由于它们的分子轨道量子化,它们经常表现出PL,这可以根据它们的盖层配体、原子数量、晶体包装、异质金属的存在和周围环境来调节。除了等离子体外,MNCs在超快时间尺度上的弛豫路径也得到了广泛的研究,这与等离子体金属纳米粒子的弛豫路径有很大的不同。此外,它们与高强度光的相互作用导致了独特的非线性光学性质。跨国公司在层次自组装结构中的协同作用已被利用,通过精确调整它们的非共价相互作用来提高它们的PL。此外,已经设计了几种基于nc的杂化体,在光激发态下表现出有效的电子或能量转移。在下一节中,我们将简要介绍NCs的氧化还原行为和向合适底物的易电子转移,从而产生类似酶的催化活性。利用这些光物理和电化学行为,纳米材料在催化、光传感和光捕获等方面有着广泛的应用。在最后一节,结论和开放的问题为NC研究界包括在内。这篇综述将对新兴的跨国公司的物理化学性质提供一个全面的看法,从而能够理解它们未来的精确调制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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