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Single-molecule reaction mapping uncovers diverse behaviours of electrocatalytic surface Pd–H intermediates

  • Wenjie Li
  • , Muwen Yang
  • , Zhiheng Zhao
  • , Ming Zhao
  • , Rong Ye
  • , Bing Fu
  • , Peng Chen*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Many vital electrocatalytic transformations hinge on reactive surface metal–hydrogen intermediates (M–H*), yet the low concentration and transient nature of such intermediates present formidable challenges to in-depth investigation. Here we use single-molecule super-resolution reaction imaging to directly probe surface palladium–hydrogen (Pd–H*) intermediates on individual palladium nanocubes during electrocatalytic hydrogen evolution. Our approach visualizes hydrogen spillover from palladium to the surrounding substrate surface over hundreds of nanometres away and dissects substantial inter- and intraparticle heterogeneity. Through Gaussian-broadening kinetic analysis, we reveal that ensemble-averaged measurements systematically overestimate the stability of Pd–H*. Moreover, we resolve three subpopulations of palladium nanocubes with distinct reactivity features, uncovering critical correlations between intermediate stability, hydrogenation reactivity and transition-state properties. Our findings highlight the necessity of single-particle resolution for capturing the intrinsic complexity of electrocatalysts; our approach is also broadly applicable to interrogate surface-reactive intermediates across a wide array of electrocatalytic pathways. © The Author(s), under exclusive licence to Springer Nature Limited 2025.
Original languageEnglish
Pages (from-to)1159–1168
Number of pages10
JournalNature Catalysis
Volume8
Online published27 Oct 2025
DOIs
Publication statusPublished - Nov 2025

Funding

The research is supported by the NSF (grant CHE-2303933). Preliminary studies earlier were supported by the Army Research Office (grant number W911NF2310105) and the US Department of Energy, Office of Science, Basic Energy Sciences, Catalysis Science Program (grant number DE-SC0004911). This work made use of the Cornell Center for Materials Research Shared Facilities which are supported through the NSF MRSEC programme (DMR-1719875). We thank K. Termini for fabricating custom-designed parts.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

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