中文
508
Home
Dr.Wu
Research
Member
Publications
News
Contact
Publications
 
All
2027
2026
2025
2024
2023
2022
2021
2020
2019
2018
2017
2016
2015
2014
2013
2012
2011
2010
2009
2007
2006
   
A Surface-to-Interface Boronation Engineering Strategy Stabilizing the O/Mn Redox Chemistry of Lithium-Rich Manganese based Oxides towards High Energy-Density Cathodes
Posted:2025-05-07 08:14    Column:2025

M.Z. Yang, T.L. Chen, G.R. Wang *, X.F. Li, Y.Y. Liu, X.X. Ren, Y. Zhang, L. Wu, L. Song, J.C. Sun * and Z.-S. Wu *

Energy & Environmental Science, 2025, 18.

DOI: 10.1039/D4EE04857A [PDF]

Lithium-rich manganese-based oxides (LRMOs) are promising high-specific-energy cathode materials for lithium-ion batteries (LIBs) but face issues of voltage decay and poor cyclability rooted in ireversible O/Mn redox. Herein we present a general surface-to-interface boronation engineering strategy of stabilizing LRMO (B-LRMO) with an ion-conductive high-entropy LixTMyBzO2 surface and a gradient-polyanions (BO33-/BO45-) doped interface, exceptionally boosting fast-charging and long-term cyclability. Our B-LRMO achieves a specific capacity of 305 mAh g-1 at 0.1 C, and retains 92% capacity after 200 cycles at 1 C, showing a voltage decay of only 0.788 mV per cycle. Even under extreme fast-charging rate of 5 C, B-LRMO maintains a capacity of 171 mAh g-1, and a 72% capacity retention after 600 cycles, outperforming pristine LRMO (39%) and most of reported LRMO works. Further, we evidence that boronation engineering effectively strengthens the reversibility of O/Mn redox chemistry, leading to improved structural reversibility, enhanced cationic/anionic redox kinetics, reduced metal/oxygen loss, and boosted Li+ storage performance. Our 4.99 Ah pouch cells (B-LRMO||graphite) deliver an energy density of 329 Wh kg-1, and a 97% capacity retention after 30 cycles, demonstrative of enormous applicability. This work provides theoretical and experimental guideline for designing high-capacity and high-voltage LRMO cathodes towards fast-charging long-life LIBs.

Dalian Institute of Chemical Physics, CAS
457 Zhongshan Road Dalian, China 116023
E-mail: wuzs#dicp.ac.cn

Copyright © 2D Materials Chemistry & Energy Applications Group. All Rights Reserved.

Home / Dr.Wu / Research / Member / Publications / News / Contact