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The dual role of hydrogen in grain boundary mobility

Ding, Yu; Zhao, Kai; Lin, Meichao; Yu, Haiyang; Xiao, Senbo; He, Jianying; Zhang, Zhiliang
Peer reviewed, Journal article
Published version
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2023-Yu-J+Appl+Phys-H+dual+role.pdf (Locked)
URI
https://hdl.handle.net/11250/3049699
Date
2023
Metadata
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  • Publikasjoner fra CRIStin - NTNU [41890]
Original version
10.1063/5.0132488
Abstract
ABSTRACT The effect of solute hydrogen on shear-coupled grain boundary (GB) migration is investigated with the dislocation-array type Σ25(430)[001] GB and a dual role of hydrogen on GB mobility is unraveled. In the low temperature and high loading rate regime, where hydrogen diffusion is substantially slower than GB motion, GB breaks away from the hydrogen atmosphere and transforms into a new stable phase with highly enhanced mobility. In the reverse regime, hydrogen atoms move along with GB, exerting a drag force on GB and decreasing its mobility. These findings provide rationale for the coexistence of hydrogen hardening and softening observed experimentally in polycrystalline materials.
 
The dual role of hydrogen in grain boundary mobility
 
Publisher
AIP Publishing
Journal
Journal of Applied Physics

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