Direct Imaging of Hydrogen‐Driven Dislocation and Strain Field Evolution in a Stainless Steel Grain

D David Yang M Mujan Seif (Department of Engineering Science University of Oxford Oxford OX1 3PJ UK) G Guanze He (Department of Engineering Science University of Oxford Oxford OX1 3PJ UK) K Kay Song (Department of Engineering Science University of Oxford Oxford OX1 3PJ UK) A Adrien Morez (Department of Engineering Science University of Oxford Oxford OX1 3PJ UK) B Benjamin de Jager (Department of Engineering Science University of Oxford Oxford OX1 3PJ UK) D Dmytro Nykypanchuk R Ross J. Harder (Advanced Photon Source Argonne National Laboratory Lemont IL 60439 USA) W Wonsuk Cha (Advanced Photon Source) E Edmund Tarleton (Department of Engineering Science University of Oxford Oxford OX1 3PJ UK) I Ian K. Robinson (Condensed Matter Physics and Materials Science Department Brookhaven National Laboratory Upton NY 11973 USA) F Felix Hofmann (Department of Engineering Science University of Oxford Oxford OX1 3PJ UK)

Abstract

Abstract Hydrogen embrittlement (HE) poses a significant challenge to the durability of materials used in hydrogen production and utilization. Disentangling the competing nanoscale mechanisms driving HE often relies on simulations and electron‐transparent sample techniques, limiting experimental insights into hydrogen‐induced dislocation behavior in bulk materials. This study employs in situ Bragg coherent X‐ray diffraction imaging to track three‐dimensional (3D) dislocation and strain field evolution during hydrogen charging in a bulk grain of austenitic 316 stainless steel. Tracking a single dislocation reveals hydrogen‐enhanced mobility and relaxation, consistent with dislocation dynamics simulations. Subsequent observations reveal dislocation unpinning and climb processes, likely driven by osmotic forces. Additionally, nanoscale strain analysis around the dislocation core directly measures hydrogen‐induced elastic shielding. These findings experimentally validate theoretical predictions and offer mechanistic insights into hydrogen‐driven dislocation behavior. The quantified nanoscale phenomena serve as critical inputs for multiscale modeling frameworks to predict bulk material responses and accelerate the development of HE‐resistant alloys.

Article Details

Volume / Issue Vol. 37, Issue 45
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

D

David Yang

M

Mujan Seif

Department of Engineering Science University of Oxford Oxford OX1 3PJ UK

G

Guanze He

Department of Engineering Science University of Oxford Oxford OX1 3PJ UK

K

Kay Song

Department of Engineering Science University of Oxford Oxford OX1 3PJ UK

A

Adrien Morez

Department of Engineering Science University of Oxford Oxford OX1 3PJ UK

B

Benjamin de Jager

Department of Engineering Science University of Oxford Oxford OX1 3PJ UK

D

Dmytro Nykypanchuk

R

Ross J. Harder

Advanced Photon Source Argonne National Laboratory Lemont IL 60439 USA

W

Wonsuk Cha

Advanced Photon Source

E

Edmund Tarleton

Department of Engineering Science University of Oxford Oxford OX1 3PJ UK

I

Ian K. Robinson

Condensed Matter Physics and Materials Science Department Brookhaven National Laboratory Upton NY 11973 USA

F

Felix Hofmann

Department of Engineering Science University of Oxford Oxford OX1 3PJ UK