TY - JOUR
T1 - Synergistically Enhanced Hydrogen Storage Kinetics and Cycling Stability by Secondary Phase in TiCrVNbFe High-Entropy Alloy
AU - Huang, Sen
AU - Wang, Xinyu
AU - Cheng, Bo
AU - Cai, Hongmei
AU - Zhao, Yumeng
AU - Xue, Lufeng
AU - Wan, Di
AU - Dou, Bang
AU - Xue, Yunfei
N1 - Publisher Copyright:
© The Minerals, Metals & Materials Society 2026.
PY - 2026
Y1 - 2026
N2 - High-entropy alloys (HEAs) have garnered significant attention for their high hydrogen storage capacity, yet their hydrogen uptake kinetics and cycling stability require further improvement. In this study, adding 3 at.% Mn to the body-centered cubic (BCC) V30Ti25Cr29Fe6Nb10 HEA induced the formation of a minor second phase. This enhanced hydrogen diffusion, reducing the time required for the alloy to reach 90% maximum hydrogen uptake by 23% (from 157 s to 121 s). Moreover, Mn addition reduced the pressure hysteresis factor from 1.84 to 1.39, which effectively lowered the thermodynamic barrier for hydrogen desorption and raised the reversible hydrogen storage capacity from 2.01 wt. to 2.06 wt.%. Furthermore, the incorporation of Mn significantly improved the cycling stability of the alloy, elevating the capacity retention rate after 20 hydrogen absorption and desorption cycles from 81.75% to 93.20%, an enhancement of 14%. These findings provide an effective strategy for developing high-performance hydrogen storage alloys.
AB - High-entropy alloys (HEAs) have garnered significant attention for their high hydrogen storage capacity, yet their hydrogen uptake kinetics and cycling stability require further improvement. In this study, adding 3 at.% Mn to the body-centered cubic (BCC) V30Ti25Cr29Fe6Nb10 HEA induced the formation of a minor second phase. This enhanced hydrogen diffusion, reducing the time required for the alloy to reach 90% maximum hydrogen uptake by 23% (from 157 s to 121 s). Moreover, Mn addition reduced the pressure hysteresis factor from 1.84 to 1.39, which effectively lowered the thermodynamic barrier for hydrogen desorption and raised the reversible hydrogen storage capacity from 2.01 wt. to 2.06 wt.%. Furthermore, the incorporation of Mn significantly improved the cycling stability of the alloy, elevating the capacity retention rate after 20 hydrogen absorption and desorption cycles from 81.75% to 93.20%, an enhancement of 14%. These findings provide an effective strategy for developing high-performance hydrogen storage alloys.
UR - https://www.scopus.com/pages/publications/105041222005
U2 - 10.1007/s11837-026-08458-4
DO - 10.1007/s11837-026-08458-4
M3 - Article
AN - SCOPUS:105041222005
SN - 1047-4838
JO - JOM
JF - JOM
ER -