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Atomic-precision engineering of metal nanoclusters

机译:金属纳米能器的原子精密工程

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Ultrasmall metal nanoparticles (below 2.2 nm core diameter) start to show discrete electronic energy levels due to strong quantum confinement effects and thus behave much like molecules. The size and structure dependent quantization induces a plethora of new phenomena, including multi-band optical absorption, enhanced luminescence, single-electron magnetism, and catalytic reactivity. The exploration of such new properties is largely built on the success in unveiling the crystallographic structures of atomically precise nanoclusters (typically protected by ligands, formulated as MnLmq, where M = metal, L = Ligand, and q = charge). Correlation between the atomic structures of nanoclusters and their properties has further enabled atomic-precision engineering toward materials design. In this frontier article, we illustrate several aspects of the precise engineering of gold nanoclusters, such as the single-atom size augmenting, single-atom dislodging and doping, precise surface modification, and single-electron control for magnetism. Such precise engineering involves the nanocluster's geometric structure, surface chemistry, and electronic properties, and future endeavors will lead to new materials design rules for structure function correlations and largely boost the applications of metal nanoclusters in optics, catalysis, magnetism, and other fields. Following the illustrations of atomic-precision engineering, we have also put forth some perspectives. We hope this frontier article will stimulate research interest in atomic-level engineering of nanoclusters.
机译:超大金属纳米颗粒(低于2.2nm芯直径)开始显示由于强量子限制效应引起的离散电子能量水平,因此表现得很多像分子。尺寸和结构依赖量化诱导血清新现象,包括多带光学吸收,增强的发光,单电子磁性和催化反应性。这种新性质的探索主要是在揭示原子上精确纳米团簇的晶体结构(通常由配体的配体保护,其中MnLMQ制备,其中M =金属,L =配体和Q =电荷)的成功构建。纳米能器的原子结构与其性能之间的相关性进一步使原子精密工程成为材料设计。在本文的前沿文章中,我们说明了金纳米能器的精确工程的若干方面,例如单原子尺寸增强,单原子脱落和掺杂,精确的表面改性和磁力的单电子控制。这种精确的工程涉及纳米光栅的几何结构,表面化学和电子性质,未来的努力将导致结构功能相关性的新材料设计规则,并且主要提高金属纳米能器在光学,催化,磁性等领域的应用。在原子精密工程的插图之后,我们还提出了一些观点。我们希望这个边界文章能够刺激纳米情商原子级工程的研究兴趣。

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