Login / Signup

A universal and scalable transformation of bulk metals into single-atom catalysts in ionic liquids.

Shujuan WangMinghui LuXuewen XiaFei WangXiaolu XiongKai DingZhongya PangGuangshi LiQian XuHsien-Yi HsuShen HuLi JiYufeng ZhaoJing WangXingli ZouXiong-Gang Lu
Published in: Proceedings of the National Academy of Sciences of the United States of America (2024)
Single-atom catalysts (SACs) with maximized metal atom utilization and intriguing properties are of utmost importance for energy conversion and catalysis science. However, the lack of a straightforward and scalable synthesis strategy of SACs on diverse support materials remains the bottleneck for their large-scale industrial applications. Herein, we report a general approach to directly transform bulk metals into single atoms through the precise control of the electrodissolution-electrodeposition kinetics in ionic liquids and demonstrate the successful applicability of up to twenty different monometallic SACs and one multimetallic SAC with five distinct elements. As a case study, the atomically dispersed Pt was electrodeposited onto Ni 3 N/Ni-Co-graphene oxide heterostructures in varied scales (up to 5 cm × 5 cm) as bifunctional catalysts with the electronic metal-support interaction, which exhibits low overpotentials at 10 mA cm -2 for hydrogen evolution reaction (HER, 30 mV) and oxygen evolution reaction (OER, 263 mV) with a relatively low Pt loading (0.98 wt%). This work provides a simple and practical route for large-scale synthesis of various SACs with favorable catalytic properties on diversified supports using alternative ionic liquids and inspires the methodology on precise synthesis of multimetallic single-atom materials with tunable compositions.
Keyphrases
  • ionic liquid
  • room temperature
  • molecular dynamics
  • highly efficient
  • electron transfer
  • transition metal
  • heavy metals
  • health risk
  • wastewater treatment
  • health risk assessment