Realizing four-electron conversion chemistry for all-solid-state Li||I2 batteries at room temperature

Z Zhu Cheng (Section Storage of Electrochemical Energy, Radiation Science and Technology, Faculty of Applied Sciences) H Hang Liu (Division of Life Science, The Hong Kong University of Science and Technology, Clear Water Bay) M Menghang Zhang H Hui Pan (State Key Laboratory of Organometallic Chemistry, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Shanghai 200032, China) C Chuanchao Sheng (Center of Energy Storage Materials & Technology, College of Engineering and Applied Sciences, Jiangsu Key Laboratory of Artificial Functional Materials, National Laboratory of Solid State Microstructures and Collaborative Innovation Center of Advanced Microstructures) W Wei Li M Marnix Wagemaker (Section Storage of Electrochemical Energy, Radiation Science and Technology, Faculty of Applied Sciences) P Ping He H Haoshen Zhou

Abstract

Abstract Rechargeable Li||I2 batteries based on liquid organic electrolytes suffer from pronounced polyiodides shuttling and safety concerns, which can be potentially tackled by the use of solid-state electrolytes. However, current all-solid-state Li||I2 batteries only demonstrate limited capacity based on a two-electron I−/I2 polyiodides chemistry at elevated temperatures, preventing them from rivaling state-of-the-art lithium-ion batteries. Herein, we report a fast, stable and high-capacity four-electron solid-conversion I−/I2/I+ chemistry in all-solid-state Li||I2 batteries at room temperature. Through the strategic use of a highly conductive, chlorine-rich solid electrolyte Li4.2InCl7.2 as the catholyte, we effectively activate the I2/I+ redox couple. This activation is achieved through a robust I-Cl interhalogen interaction between I2 and the catholyte, facilitated by an interface-mediated heterogeneous oxidation mechanism. Moreover, apart from serving as Li-ion conduction pathway, the Li4.2InCl7.2 catholyte is demonstrated to show a reversible redox behavior and contribute to the electrode capacity without compromising its conductivity. Based on the I−/I2/I+ four-electron chemistry, the as-designed all-solid-state Li||I2 batteries deliver a high specific capacity of 449 mAh g-1 at 44 mA g-1 based on I2 mass and an impressive cycling stability over 600 cycles with a capacity retention of 91% at 440 mA g-1 and at 25 °C.

Article Details

Volume / Issue Vol. 16, Issue 1
Published February 18, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

Z

Zhu Cheng

Section Storage of Electrochemical Energy, Radiation Science and Technology, Faculty of Applied Sciences

H

Hang Liu

Division of Life Science, The Hong Kong University of Science and Technology, Clear Water Bay

M

Menghang Zhang

H

Hui Pan

State Key Laboratory of Organometallic Chemistry, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Shanghai 200032, China

C

Chuanchao Sheng

Center of Energy Storage Materials & Technology, College of Engineering and Applied Sciences, Jiangsu Key Laboratory of Artificial Functional Materials, National Laboratory of Solid State Microstructures and Collaborative Innovation Center of Advanced Microstructures

W

Wei Li

M

Marnix Wagemaker

Section Storage of Electrochemical Energy, Radiation Science and Technology, Faculty of Applied Sciences

P

Ping He

H

Haoshen Zhou