Mechanism of the electrochemical hydrogenation of graphene

Y Y.-C. Soong H H. Li Y Y. Fu J J. Tong S S. Huang X X. Zhang E E. Griffin E E. Hoenig M M. Alhashmi Y Y. Li D D. Bahamon J J. Zhong A A. Summerfield R R. N. Costa Filho C C. Sevik R R. Gorbachev E E. C. Neyts L L. F. Vega F F. M. Peeters M M. Lozada-Hidalgo

Abstract

Abstract The electrochemical hydrogenation of graphene induces a robust and reversible conductor-insulator transition, of strong interest in logic-and-memory applications. However, its mechanism remains unknown. Here we show that it proceeds as a reduction reaction in which proton adsorption competes with the formation of H 2 molecules via an Eley-Rideal process. Graphene’s electrochemical hydrogenation is up to 10 6 times faster than alternative hydrogenation methods and is fully reversible via the oxidative desorption of protons. We demonstrate that the proton reduction rate in defect-free graphene can be enhanced by an order of magnitude by the introduction of nanoscale corrugations in its lattice, and that the substitution of protons for deuterons results both in lower potentials for the hydrogenation process and in a more stable compound. Our results pave the way to investigating the chemisorption of ions in 2D materials at high electric fields, opening a new avenue to control these materials’ electronic properties.

Article Details

Volume / Issue Vol. 16, Issue 1
Published November 28, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (20)

Y

Y.-C. Soong

H

H. Li

Y

Y. Fu

J

J. Tong

S

S. Huang

X

X. Zhang

E

E. Griffin

E

E. Hoenig

M

M. Alhashmi

Y

Y. Li

D

D. Bahamon

J

J. Zhong

A

A. Summerfield

R

R. N. Costa Filho

C

C. Sevik

R

R. Gorbachev

E

E. C. Neyts

L

L. F. Vega

F

F. M. Peeters

M

M. Lozada-Hidalgo