TY - JOUR
T1 - Crystal Modulation of Mn-Based Layered Oxide toward Long-Enduring Anionic Redox with Fast Kinetics for Sodium-Ion Batteries
AU - Zhang, Gaoyuan
AU - Yin, Xing Xing
AU - Ning, De
AU - Chai, Yan
AU - Du, Ruijie
AU - Hao, Dingbang
AU - Wang, Chunling
AU - Liu, Xueling
AU - Gao, Rui
AU - Wang, Jun
AU - Yao, Xiangdong
AU - Li, Yongli
AU - Zhou, Dong
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/1/15
Y1 - 2025/1/15
N2 - Mn-based layered oxide cathodes for sodium-ion batteries with anionic redox reactions hold great potential for energy storage applications due to their ultra-high capacity and cost effectiveness. However, achieving high capacity requires overcoming challenges such as oxygen-redox failure, sluggish kinetics, and structural degradation. Herein, we employ an innovative crystal modulation strategy, using Mn-based Na0.72Li0.24Mn0.76O2 as a representative cathode material, which shows that the highly exposed {010} active facets enable an enhanced rate capability (119.6 mAh g−1 at 10 C) with fast kinetics. Meanwhile, the reinforced Mn−O bond inhibits excessive oxidation of lattice oxygen and O−O cohesion loss, stabilizing and maintaining a long-enduring reversible oxygen-redox activity (100 % high capacity retention after 100 cycles at 0.5 C and 84.28 % retention after 300 cycles at 5 C). Time-resolved operando two-dimensional X-ray diffraction reveals the robust structural stability, zero-strain behavior, and suppressed phase transition with ultra-low volume variation during cycling at different rates (0.1 C: 1.75 %, 1 C: 0.31 %, 5 C: 0.04 %). Additionally, the full cell coupled with hard carbon achieves a high energy density of approximately 211 Wh kg−1 with superior performance. This work highlights the significance of crystal modulation and presents a universal approach in developing Mn-based oxide cathodes with stable anionic redox for high-performance sodium-ion batteries.
AB - Mn-based layered oxide cathodes for sodium-ion batteries with anionic redox reactions hold great potential for energy storage applications due to their ultra-high capacity and cost effectiveness. However, achieving high capacity requires overcoming challenges such as oxygen-redox failure, sluggish kinetics, and structural degradation. Herein, we employ an innovative crystal modulation strategy, using Mn-based Na0.72Li0.24Mn0.76O2 as a representative cathode material, which shows that the highly exposed {010} active facets enable an enhanced rate capability (119.6 mAh g−1 at 10 C) with fast kinetics. Meanwhile, the reinforced Mn−O bond inhibits excessive oxidation of lattice oxygen and O−O cohesion loss, stabilizing and maintaining a long-enduring reversible oxygen-redox activity (100 % high capacity retention after 100 cycles at 0.5 C and 84.28 % retention after 300 cycles at 5 C). Time-resolved operando two-dimensional X-ray diffraction reveals the robust structural stability, zero-strain behavior, and suppressed phase transition with ultra-low volume variation during cycling at different rates (0.1 C: 1.75 %, 1 C: 0.31 %, 5 C: 0.04 %). Additionally, the full cell coupled with hard carbon achieves a high energy density of approximately 211 Wh kg−1 with superior performance. This work highlights the significance of crystal modulation and presents a universal approach in developing Mn-based oxide cathodes with stable anionic redox for high-performance sodium-ion batteries.
KW - Crystal Modulation
KW - Fast Kinetics
KW - Mn-Based Layered Oxide Cathode
KW - Oxygen Anionic Redox
KW - Sodium-Ion Batteries
UR - https://www.scopus.com/pages/publications/85211064465
U2 - 10.1002/anie.202415450
DO - 10.1002/anie.202415450
M3 - 文章
C2 - 39484729
AN - SCOPUS:85211064465
SN - 1433-7851
VL - 64
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
IS - 3
M1 - e202415450
ER -