Chen Along, Yin Bing, Huang Baoyu, Liu Ying, Chen Shuang, Pei Yong, Zhu Manzhou
Institutes of Physical Science and Information Technology and Centre for Atomic Engineering of Advanced Materials, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Department of Chemistry and Anhui Province Key Laboratory of Chemistry for Inorganic/Organic Hybrid Functionalized Materials, Anhui University, Hefei, Anhui 230601, China.
Department of Chemistry, Key Laboratory of Environmentally Friendly Chemistry and Applications of MOE, Xiangtan University, Xiangtan, Hunan 411105, China.
J Phys Chem Lett. 2022 May 12;13(18):4139-4144. doi: 10.1021/acs.jpclett.2c00905. Epub 2022 May 4.
Tailoring the surface structure of nanomaterials is desirable for investigating their mechanisms and properties from a nanochemistry perspective. The modification of the surface of metal nanoparticles with a single metal atom has proven difficult, which has hindered the understanding of the contribution of different motifs in nanoclusters to their properties. Herein, we report single-metal-atom surface tailoring by thermally etching the nanocluster AuCu(DPPMH)(SPhCl) ( = 8 or 9) to obtain AuCu(DPPMH)(DPPM)(SPhCl) ( = 9 or 10) nanoclusters. An AuCu core was observed in both nanoclusters, which can be regarded as part of an icosahedron. Experiments and theoretical simulations revealed the tailoring processes of the icosahedron. Both nanoclusters displayed an NIR-II emission, and the introduction of the surface metal atom led to a red-shift in the emission band from 983 to 1025 nm. This work contributes to the development of precisely tailored nanocluster structures and provides an understanding of structure-property correlations.
从纳米化学的角度来看,定制纳米材料的表面结构对于研究其机理和性质是很有必要的。事实证明,用单个金属原子修饰金属纳米颗粒的表面很困难,这阻碍了人们对纳米团簇中不同结构单元对其性质的贡献的理解。在此,我们报道了通过热蚀刻纳米团簇AuCu(DPPMH)(SPhCl)(n = 8或9)以获得AuCu(DPPMH)(DPPM)(SPhCl)(n = 9或10)纳米团簇来进行单金属原子表面定制。在这两种纳米团簇中均观察到了一个AuCu核,它可被视为二十面体的一部分。实验和理论模拟揭示了二十面体的定制过程。两种纳米团簇均表现出近红外二区发射,并且表面金属原子的引入导致发射带从983 nm红移至1025 nm。这项工作有助于精确定制纳米团簇结构的发展,并提供了对结构 - 性质相关性的理解。