4.8 Article

O-coordinated W-Mo dual-atom catalyst for pH-universal electrocatalytic hydrogen evolution

Journal

SCIENCE ADVANCES
Volume 6, Issue 23, Pages -

Publisher

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.aba6586

Keywords

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Funding

  1. National Natural Science Foundation of China [21603129]
  2. Foundation of State Key Laboratory of Coal Conversion [J18-19-903]
  3. Fund for Shanxi 1331 Project Key Innovative Research Team (1331KIRT) [TD201704]
  4. Program for the Outstanding Innovative Teams of Higher Learning Institutions of Shanxi (OIT)
  5. Fund for Shanxi 1331 Project for Featured Discipline of Chemistry in SXNU
  6. Analytical Instrumentation Center, SPST, ShanghaiTech University [SPST-AIC10112914]
  7. National Science Foundation [1900039]
  8. Welch Foundation [F-1959-20180324]

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Single-atom catalysts (SACs) maximize the utility efficiency of metal atoms and offer great potential for hydrogen evolution reaction (HER). Bimetal atom catalysts are an appealing strategy in virtue of the synergistic interaction of neighboring metal atoms, which can further improve the intrinsic HER activity beyond SACs. However, the rational design of these systems remains conceptually challenging and requires in-depth research both experimentally and theoretically. Here, we develop a dual-atom catalyst (DAC) consisting of O-coordinated W-Mo heterodimer embedded in N-doped graphene (WiMoi-NG), which is synthesized by controllable self-assembly and nitridation processes. In W1Mo1-NG, the O-bridged W-Mo atoms are anchored in NG vacancies through oxygen atoms with W-O-Mo-O-C configuration, resulting in stable and finely distribution. The W1Mo1-NG DAC enables Pt-like activity and ultrahigh stability for HER in pH-universal electrolyte. The electron delocalization of W-O-Mo-O-C configuration provides optimal adsorption strength of H and boosts the HER kinetics, thereby notably promoting the intrinsic activity.

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