Direct Imaging Reveals the Atomic Mechanism of Active‐Site Formation in Nanoclusters for Hydrogen Production

E Emerson C. Kohlrausch (School of Chemistry University of Nottingham Nottingham NG7 2RD UK) C Christopher Leist G Gazi N. Aliev (School of Physics and Astronomy University of Birmingham Edgbaston B15 2TT UK) M Mohsen Danaie (Electron Physical Science Imaging Centre (ePSIC) Harwell Science & Innovation Campus Didcot OX11 0DE UK) M Matthew Young M Madasamy Thangamuthu (School of Chemistry, University of Nottingham University Park Nottingham UK) Y Yifan Chen W William J. Cull (School of Chemistry, University of Nottingham University Park Nottingham UK) W Wolfgang Theis (School of Physics and Astronomy University of Birmingham Edgbaston B15 2TT UK) U Ute Kaiser A Andrei N. Khlobystov (School of Chemistry) J Jesum Alves Fernandes (School of Chemistry University of Nottingham Nottingham NG7 2RD UK)

Abstract

ABSTRACT Understanding how catalytically active sites emerge and evolve under working conditions is a fundamental challenge that limits the rational design of heterogeneous catalysts. Here, we directly visualize the transformation between alloyed PtNi and phase‐separated Pt‐NiO nanoclusters during hydrogen evolution. Using in situ low‐voltage aberration‐corrected electron microscopy, with the electron beam serving as both the stimulus and probe, we track the formation of active sites under low‐water‐vapor conditions. PtNi nanoclusters were assembled with controlled mixing of the atoms, resulting in two distinct configurational entropy states. Under reaction conditions, the transformation of bimetallic nanoclusters shifts from an entropically stabilized alloy to an enthalpically favored phase‐separated configuration, controlled by oxygen availability and by a critical nucleus size. The atomic dynamics observed in real space correlate directly with catalytic performance, where the low‐entropy Pt‐NiO state achieves a record hydrogen evolution mass activity of 11.1 A/mg Pt due to a high density of interfacial sites that promote water dissociation on NiO and efficient hydrogen adsorption on Pt atoms.

Article Details

Volume / Issue Vol. 38, Issue 38
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

E

Emerson C. Kohlrausch

School of Chemistry University of Nottingham Nottingham NG7 2RD UK

C

Christopher Leist

G

Gazi N. Aliev

School of Physics and Astronomy University of Birmingham Edgbaston B15 2TT UK

M

Mohsen Danaie

Electron Physical Science Imaging Centre (ePSIC) Harwell Science & Innovation Campus Didcot OX11 0DE UK

M

Matthew Young

M

Madasamy Thangamuthu

School of Chemistry, University of Nottingham University Park Nottingham UK

Y

Yifan Chen

W

William J. Cull

School of Chemistry, University of Nottingham University Park Nottingham UK

W

Wolfgang Theis

School of Physics and Astronomy University of Birmingham Edgbaston B15 2TT UK

U

Ute Kaiser

A

Andrei N. Khlobystov

School of Chemistry

J

Jesum Alves Fernandes

School of Chemistry University of Nottingham Nottingham NG7 2RD UK