TY - JOUR
T1 - Effect of Co substitution on microstructure and electrochemical kinetics of La–Y–Ni superlattice alloys
AU - Anqiang, Deng
AU - Ye, Tian
AU - Yingjie, Wang
AU - Longqiang, Li
AU - Guofeng, Mu
AU - Xiaoyu, Yan
AU - Wei, Zhang
AU - Hailong, Wang
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature 2026.
PY - 2026/7
Y1 - 2026/7
N2 - In this study, based on the previously optimized La–Y–Ni superlattice hydrogen-storage alloy matrix La₁₋ₓYₓNi₃.₇₅Mn₀.₂Al₀.₁₅, a series of La₀.₄Y₀.₆Ni₃.₇₅₋ₓMn₀.₂Al₀.₁₅Coₓ(x = 0,0.3,0.6,0.9) alloys was prepared by partially substituting Co for Ni at the B-site to investigate how B-site electronic structure and local volume regulation influence the stability of the superlattice structure and its electrochemical properties. Previous studies have shown that Co preferentially enters the AB5 subunit, reducing the A2B4/AB5 volume ratio from 1.0179(1.0185) to around 1.0159(1.01) at x = 0.9, thereby improving substructure volume matching. The electrochemical tests show that with the increase in Co content, the cycle stability continuously improves, showing a significant enhancement. The discharge capacity and high-rate performance generally exhibit a “low content retention, excessive decay” trend, with x = 0.3 performing the most balanced across several performance indicators. Electrochemical P–C–T measurements indicate that Co addition lowers the plateau pressure, but when x ≥ 0.6, the enhanced hydride phase stability leads to reduced reversible dehydrogenation capacity. Kinetic analysis demonstrates that increasing Co content slightly decreases the exchange current density I0, continuously reduces the diffusion coefficient D, and increases both Rct and diffusion impedance in EIS; the kinetics are dominated by charge-transfer control for x ≤ 0.3, whereas bulk diffusion becomes the limiting factor for x ≥ 0.6. Post-cycling SEM observations show that moderate Co contents (x = 0.3,0.6) promote the formation of relatively uniform corrosion layers, helping alleviate pulverization and maintain electrode structural integrity, while high Co content (x = 0.9) further enhances surface corrosion resistance but produces a dense film that increases interfacial impedance and suppresses hydrogen diffusion. Overall, Co in this system exhibits coupled effects of “modulating substructure matching” and “altering kinetic behavior,” establishing a necessary balance between structural stability and kinetic performance, with x = 0.3 being the optimal doping level in terms of comprehensive properties.
AB - In this study, based on the previously optimized La–Y–Ni superlattice hydrogen-storage alloy matrix La₁₋ₓYₓNi₃.₇₅Mn₀.₂Al₀.₁₅, a series of La₀.₄Y₀.₆Ni₃.₇₅₋ₓMn₀.₂Al₀.₁₅Coₓ(x = 0,0.3,0.6,0.9) alloys was prepared by partially substituting Co for Ni at the B-site to investigate how B-site electronic structure and local volume regulation influence the stability of the superlattice structure and its electrochemical properties. Previous studies have shown that Co preferentially enters the AB5 subunit, reducing the A2B4/AB5 volume ratio from 1.0179(1.0185) to around 1.0159(1.01) at x = 0.9, thereby improving substructure volume matching. The electrochemical tests show that with the increase in Co content, the cycle stability continuously improves, showing a significant enhancement. The discharge capacity and high-rate performance generally exhibit a “low content retention, excessive decay” trend, with x = 0.3 performing the most balanced across several performance indicators. Electrochemical P–C–T measurements indicate that Co addition lowers the plateau pressure, but when x ≥ 0.6, the enhanced hydride phase stability leads to reduced reversible dehydrogenation capacity. Kinetic analysis demonstrates that increasing Co content slightly decreases the exchange current density I0, continuously reduces the diffusion coefficient D, and increases both Rct and diffusion impedance in EIS; the kinetics are dominated by charge-transfer control for x ≤ 0.3, whereas bulk diffusion becomes the limiting factor for x ≥ 0.6. Post-cycling SEM observations show that moderate Co contents (x = 0.3,0.6) promote the formation of relatively uniform corrosion layers, helping alleviate pulverization and maintain electrode structural integrity, while high Co content (x = 0.9) further enhances surface corrosion resistance but produces a dense film that increases interfacial impedance and suppresses hydrogen diffusion. Overall, Co in this system exhibits coupled effects of “modulating substructure matching” and “altering kinetic behavior,” establishing a necessary balance between structural stability and kinetic performance, with x = 0.3 being the optimal doping level in terms of comprehensive properties.
KW - AB/AB subunit matching
KW - Co partial substitution
KW - Crystal structure modulation
KW - Electrochemical performance
KW - La–Y–Ni superlattice hydrogen storage alloy
UR - https://www.scopus.com/pages/publications/105035342602
U2 - 10.1007/s10008-026-06576-2
DO - 10.1007/s10008-026-06576-2
M3 - 文章
AN - SCOPUS:105035342602
SN - 1432-8488
VL - 30
SP - 2677
EP - 2695
JO - Journal of Solid State Electrochemistry
JF - Journal of Solid State Electrochemistry
IS - 7
ER -