Phosphorene Supported Single-Atom Catalysts for CO Oxidation: A Computational Study.
Sambath BaskaranCong-Qiao XuYa-Fei JiangYang-Gang WangJun LiPublished in: Chemphyschem : a European journal of chemical physics and physical chemistry (2021)
Single-atom catalysts (SACs) have attracted extensive attention owing to their high catalytic activity. The development of efficient SACs is crucial for applications in heterogeneous catalysis. In this article, the geometric configuration, electronic structure, stabilitiy and catalytic performance of phosphorene (Pn) supported single metal atoms (M=Ru, Rh, Pd, Ir, Pt, and Au) have been systematically investigated using density functional theory calculations and ab initio molecular dynamics simulations. The single atoms are found to occupy the hollow site of phosphorene. Among the catalysts studied, Ru-decorated phosphorene is determined to be a potential catalyst by evaluating adsorption energies of gaseous molecules. Various mechanisms including the Eley-Rideal (ER), Langmuir-Hinshelwood (LH) and trimolecular Eley-Rideal (TER) mechanisms are considered to validate the most favourable reaction pathway. Our results reveal that Ru-Pn exhibits outstanding catalytic activity toward CO oxidation reaction via TER mechanism with the corresponding rate-determining energy barrier of 0.44 eV, making it a very promising SAC for CO oxidation under mild conditions. Overall, this work may provide a new avenue for the design and fabrication of two-dimensional materials supported SACs for low-temperature CO oxidation.
Keyphrases
- density functional theory
- molecular dynamics simulations
- molecular dynamics
- highly efficient
- electron transfer
- visible light
- hydrogen peroxide
- metal organic framework
- reduced graphene oxide
- working memory
- molecular docking
- single cell
- sensitive detection
- dna methylation
- estrogen receptor
- transition metal
- climate change
- energy transfer
- aqueous solution
- tissue engineering
- high resolution
- molecularly imprinted
- high speed