iScience · 2019 · 77 citations · 58 references
Searching for an efficient single-atom catalyst for benzene hydroxylation to phenol is of critical importance, but it still remains a challenge. Herein, a single-atom catalyst with unique Cu-N<sub>2</sub> moieties (Cu<sub>1</sub>-N<sub>2</sub>/HCNS) was prepared and confirmed by HAADF-STEM and EXAFS. Turnover number (TON) over Cu<sub>1</sub>-N<sub>2</sub>/HCNS (6,935) is 3.4 times of Cu<sub>1</sub>-N<sub>3</sub>/HCNS (2,034) under the same reaction conditions, and both exhibit much higher phenol selectivity (close to 99%) and stability compared with Cu nanoparticles and nanoclusters. Experiments and DFT calculations reveal that atomically dispersed Cu species are active sites for benzene hydroxylation to phenol, and the Cu-N<sub>2</sub> is more active than Cu-N<sub>3</sub> owing to its much lower energy barrier concerning the activation of H<sub>2</sub>O<sub>2</sub> led by its unique coordination state of local atomic structure. We envision that this work opens a new window for modulating coordination environments of single metallic atoms in catalysis design.
58
Single-atom catalysis of CO oxidation using Pt1/FeOx
Botao Qiao, Aiqin Wang, Xiaofeng Yang et al. · Nature Chemistry · 2011 · 7K citations
Heterogeneous Catalysis, Single-atom Catalyst, Single-atom Catalysis +2
Yong Wang, Xinchen Wang, Markus Antonietti · Angewandte Chemie International Edition · 2011 · 3.3K citations
Single-Atom Catalysts: Synthetic Strategies and Electrochemical Applications
Yuanjun Chen, Shufang Ji, Chen Chen et al. · Joule · 2018 · 2.1K citations · Full text
Chemical Engineering, Engineering, Heterogeneous Catalysis +4