Toward Practical Ultralong‐Life Li‐Air Batteries in High‐Humidity Environments: A Synergistic Strategy for Dual‐Interfacial Engineering

Y Yuelin Zhao (Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China) K Kefan Shi (Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China) H Hongyun Lai (Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China) Y Yirui Chen J Jingshen Xu (Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China) G Genban Sun (Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China)

Abstract

Abstract Maintaining the operational stability of Li–air batteries (LABs) in high‐humidity environments is crucial for their transition from laboratory research to practical deployment. Herein, we propose a synergistic strategy for dual‐interfacial engineering toward ultralong‐life LABs in high‐humidity environments. An iodine‐based self‐defense redox mediator—SnCl 4 and 1,8‐diiodooctane (DIO) is introduced into the electrolyte. On the cathode side, it enabled efficient bidirectional OER/ORR catalysis while forming a protective interface that suppressed both nucleophilic and hydrolytic attack. On the anode side, a highly lithiophilic, corrosion‐resistant, and moisture‐tolerant protective layer forms on the Li anode, which ensures stable battery operation under extremely humid conditions. The results show that the Li─O 2 battery achieved more than 2400 cycles (nearly 3000 h) at 1000 mA g −1 and an extremely low charge potential (<3.5 V), coupled with a high discharge capacity of 111879 mAh g −1 . Notably, the SnCl 4 /DIO‐based LABs reached more than 1800 cycles (>2160 h) even in atmospheric air without humidity control. This work significantly overcomes the strict humidity limits of traditional LABs and provides an innovative strategy for developing LABs capable of operating in high‐humidity environments.

Article Details

Volume / Issue Vol. 65, Issue 8
Published February 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

Y

Yuelin Zhao

Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China

K

Kefan Shi

Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China

H

Hongyun Lai

Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China

Y

Yirui Chen

J

Jingshen Xu

Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China

G

Genban Sun

Beijing Key Laboratory of Energy Conversion and Storage Materials College of Chemistry Beijing Normal University Beijing 100875 China