Toward Stable, High‐Energy, Partially Disordered Mn‐Rich Spinel Cathodes by Revealing and Mitigating Surface Degradation

D Dawei Xia (Department of Chemistry, Virginia Tech) J Junyi Yao C Chenguang Shi (Department of Chemistry, Virginia Tech) Q Qian Wang C Changgyu Seok (Department of Chemistry Virginia Tech Blacksburg VA 24061 USA) A Afolabi Olayiwola (Department of Chemistry Virginia Tech Blacksburg VA 24061 USA) W Weibo Huang (Department of Chemistry, Virginia Tech) D Dennis Nordlund (Stanford Synchrotron Radiation Lightsource) S Si Athena Chen C Cheng‐Jun Sun (X‐Ray Science Division Argonne National Laboratory Lemont IL 60439 USA) L Luxi Li (X-ray Science Division) D Dewen Hou L Lina Quan (Department of Chemistry) Y Yuzi Liu (Center for Nanoscale Materials) H Hui Xiong F Feng Lin

Abstract

Abstract Mn‐rich cathodes balance performance and sustainability but suffer from limited cyclability due to Mn dissolution and cathode‐to‐anode crosstalk. The Jahn‐Teller (J‐T) effect of Mn 3+ is often linked to the above phenomena, such as in spinel LiMn 2 O 4 . However, in typical voltage ranges, significant Mn 3+ only appears near the end of discharge, highlighting the need to reassess its role in driving Mn dissolution, structural degradation, and battery performance. Here, the spinel cathode's degree of disorder is tailored to expand the Mn redox range, enabling segmentation into J‐T active and less active voltage ranges. Cycling at segmented voltage windows reveals surface degradation mechanisms with and without the major J‐T effect. Despite a stronger J‐T effect below 3.6 V vs. Li/Li + , Mn dissolution is less significant than above 3.6 V. Expanding the cycling window to 2.0–4.3 V causes severe degradation as the J‐T active range induces a tetragonal phase and Mn 2+ ‐rich surface, driving Mn dissolution and consuming Li‐ion inventory in full cells. Reducing electrolyte acidity minimizes Mn 3+ disproportionation, enabling a stable dopant‐free Mn‐only cathode with a 250 mAh g −1 specific capacity. These findings demonstrate that full cells using Mn‐rich cathodes have the potential to avoid the notorious crosstalk problem through electrolyte engineering.

Article Details

Volume / Issue Vol. 37, Issue 34
Published August 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

D

Dawei Xia

Department of Chemistry, Virginia Tech

J

Junyi Yao

C

Chenguang Shi

Department of Chemistry, Virginia Tech

Q

Qian Wang

C

Changgyu Seok

Department of Chemistry Virginia Tech Blacksburg VA 24061 USA

A

Afolabi Olayiwola

Department of Chemistry Virginia Tech Blacksburg VA 24061 USA

W

Weibo Huang

Department of Chemistry, Virginia Tech

D

Dennis Nordlund

Stanford Synchrotron Radiation Lightsource

S

Si Athena Chen

C

Cheng‐Jun Sun

X‐Ray Science Division Argonne National Laboratory Lemont IL 60439 USA

L

Luxi Li

X-ray Science Division

D

Dewen Hou

L

Lina Quan

Department of Chemistry

Y

Yuzi Liu

Center for Nanoscale Materials

H

Hui Xiong

F

Feng Lin