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Visualizing Labor Division in Oxygen Electrocatalysis: Fully Exposed Ni Clusters Enabling Dual-Site Catalysis via Asymmetric Atomic Bridging

  • Mingyang Liu
  • , Jiao Li
  • , Qi Li
  • , Xudong Xiao
  • , Shan Hu*
  • , Panzhe Qiao
  • , Kun Lang
  • , Baojian Jing
  • , Zhangxin Xu
  • , Shuting Zhang
  • , Jinlong Zou*
  • , Baojiang Jiang*
  • , Zhenbo Wang*
  • *Corresponding author for this work
  • Heilongjiang University
  • Shanghai Normal University
  • CAS - Shanghai Advanced Research Institute
  • School of Environment, Harbin Institute of Technology
  • School of Chemistry and Chemical Engineering, Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Fully exposed metal cluster catalysts combine the atomic precision of single-atom catalysts with the multi-site reactivity of nanomaterials; however, achieving both structural stability and site-specific bifunctionality remains challenging. Herein, we report a Janus-type bifunctional catalyst comprising fully exposed atomic-layered nickel clusters anchored on Co2P nanocrystals (NiAC-Co2P), demonstrating excellent oxygen reduction/evolution reaction (ORR/OER) performance. Leveraging an electronic metal-support interaction, interfacial charge redistribution fine-tunes the d-band centers, optimizes intermediate adsorption and promotes dual-site catalysis. Theoretical calculations show the Ni-P-Co bridge lowers the *OOH formation barrier in ORR (half-wave potential of 0.90 V), while Ni clusters facilitate *O to *OOH conversion in OER (overpotential of 260 mV), enabling efficient four-electron kinetics via spatially decoupled dual-site cooperation. Operando x-ray absorption spectroscopy further confirms this mechanism, revealing Ni sites at the Ni-P-Co bridge undergo reversible Ni-P coordination modulation and transient Ni-O bond formation during ORR, whereas Ni-Ni clusters transform into NiOOH-like species to drive OER. Importantly, NiAC-Co2P-assembled Zn-air battery delivers a peak power density of 199.8 mW cm−2 and stable cycling performance exceeding 1400 h (approximately 4200 cycles). This work introduces a dual-site catalysis paradigm in transition metal phosphide-supported, fully exposed cluster catalysts, providing a robust strategy for designing multifunctional catalysts for energy conversion.

Original languageEnglish
JournalAngewandte Chemie - International Edition
DOIs
StateAccepted/In press - 2026
Externally publishedYes

Keywords

  • bifunctional electrocatalysis
  • dual-site cooperative catalysis
  • electronic metal-support interaction
  • fully exposed nickel clusters
  • rechargeable Zn-air batteries

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