Large-Scale Synthesis, Crystal Structure, and Optical Properties of the Ag<sub>146</sub>Br<sub>2</sub>(SR)<sub>80</sub> Nanocluster.
basic_science · Level V
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- Record sourced from PubMed, PMID 30114922.
- Also identified by DOI 10.1021/acsnano.8b04233.
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Abstract
Solving the atomic structure of large-sized metal nanoclusters is a highly challenging task yet critically important for understanding the properties and developing applications. Herein, we report a stable silver nanocluster-Ag<sub>146</sub>Br<sub>2</sub>(SR)<sub>80</sub> (where SR = 4-isopropylbenzenethiolate)-with its structure solved by X-ray crystallography. Gram-scale synthesis with high yield has been achieved by a one-pot reaction, which offers opportunities for functionalization and applications. This silver nanocluster possesses a core-shell structure with a Ag<sub>51</sub> core surrounded by a shell of Ag<sub>95</sub>Br<sub>2</sub>S<sub>80</sub>. The Ag<sub>51</sub> core can be viewed as a distorted decahedron, endowing this nanocluster with quantized electronic transitions. In the surface-protecting layer, five different types of S-Ag coordination modes are observed, ranging from the linear Ag-S-Ag to S-Ag<sub>3</sub> (triangle) and S-Ag<sub>4</sub> (square). Furthermore, temperature-dependent optical absorption and ultrafast electron dynamics are conducted to explore the relationship between the properties and structure, demonstrating that the distorted metal core and "flying saucer"-like shape of this nanocluster have significant effects on the electronic behavior. A comparison with multiple sizes of Ag nanoclusters also provides some insights into the evolution from molecular to metallic behavior.