Login / Signup

A General Strategy to Remove Metal Aggregates toward Metal-Nitrogen-Carbon Catalysts with Exclusive Atomic Dispersion.

Jianbin LiuJiangwen LiaoKang HuangJuncai DongGuanchao HeZhichao GongHuilong Fei
Published in: Advanced materials (Deerfield Beach, Fla.) (2023)
Metal- and nitrogen-doped nanocarbons (M-N-Cs) are promising alternatives to precious metals for catalyzing electrochemical energy conversion processes. However, M-N-Cs synthesized by high-temperature pyrolysis frequently suffer from compositional heterogeneity with the simultaneous presence of atomically dispersed M-N x sites and crystalline metal nanoparticles (NPs), which hinders the identification of active sites and rational optimization in performance. Herein, we report a universal and efficient strategy to obtain both precious and non-precious metal-based M-N-Cs (M = Pt, Fe, Co, Ni, Mn, Cu, Zn) with exclusive atomic dispersion by making use of ammonium iodide as the etchant to remove excessive metal aggregates at high temperature. Taking Pt-N-C as a proof-of-concept demonstration, the complete removal of Pt NPs in Pt-N-C enables the clarification on the contributions of the atomic Pt-N x moieties and Pt NPs to the catalytic activity toward the hydrogen evolution reaction. Combined electrochemical measurements and theoretical calculations identify that the atomic Pt-N x moieties by themselves possess negligible activity, but they could significantly boost the activity of the Pt NPs via the synergistic effect. This article is protected by copyright. All rights reserved.
Keyphrases
  • high temperature
  • gold nanoparticles
  • ionic liquid
  • physical activity
  • high resolution
  • mass spectrometry
  • highly efficient
  • density functional theory
  • amino acid