研究目的
To understand the metal?ligand interfaces, the energy landscape, the electronic structure and optical absorption, and the catalytic applications of atomically precise metal nanoclusters, mainly focusing on gold nanoclusters.
研究成果
DFT-based first-principles studies have provided important insights into the fundamental issues in atomically precise metal nanoclusters, including the interfacial bonding, energetics, electronic structure, optical properties, and catalytic mechanisms. The study highlights the ligand-dependent interfacial structures on gold, the role of ligands in dictating the stability of the whole cluster, and the importance of spin?orbit coupling in accurately describing the orbital level and optical-absorption spectra of gold nanoclusters. Atomically precise nanoclusters offer great opportunities in understanding nanocatalysis, by allowing theory to identify the active sites and predict the selectivity.
研究不足
The study is primarily computational, and while it provides valuable insights into the properties and behaviors of atomically precise metal nanoclusters, experimental validation of the findings is necessary. The computational models may not fully capture all aspects of the real-world behavior of these nanoclusters.