Quantifying the Correlation Between Capacity Utilization and Electrolyte Dosage for Ultrahigh‐Energy‐Density 769 Wh Kg <sup>−1</sup> Rechargeable Lithium Metal Batteries

S Shuo Zhang Y Yuyang Lu (Department of Chemistry) C Chong Yan (School of Materials Science and Engineering) X Xiangbiao Liao C Chen‐Zi Zhao (State Key Laboratory of Chemical Engineering and Low‐Carbon Technology Beijing Key Laboratory of Complex Solid‐State Batteries Department of Chemical Engineering Tsinghua University Beijing P. R. China) J Jun‐Wei Zhao (School of Materials Science and Engineering Beijing Institute of Technology Beijing P.R. China) Z Zhiyuan Dong (Yangtze River Delta Graduate School Beijing Institute of Technology Jiaxing P.R. China) Z Zhenwei Zhu (Beijing Key Laboratory of Advanced Chemical Energy Storage Technologies and Materials Research Institute of Chemical Defense Beijing P. R. China) W Wenjie Meng X Xue‐Fei Wen (Shanxi Research Institute for Clean Energy Tsinghua University Taiyuan 030032 P. R. China) P Peng Wu J Jian Pei M Meng‐Yao Wang (Shanxi Research Institute for Clean Energy Tsinghua University Taiyuan P. R. China) X Xue‐Kun Cao (Shanxi Research Institute For Clean Energy Tsinghua University Taiyuan P.R. China) J Jiang‐Kui Hu (Advanced Research Institute of Multidisciplinary Science Beijing Institute of Technology Beijing 100081 P.R. China) X Xiang Chen J Jingyi Qiu H Hao Zhang J Jia‐Qi Huang (School of Interdisciplinary Science Beijing Institute of Technology Beijing P. R. China) Q Qiang Zhang

Abstract

ABSTRACT The pursuit of high‐energy‐density lithium metal batteries requires simultaneous optimization of electrode architecture, electrolyte formulation, and interfacial stability. Here, we establish a fundamental parameter g(σ e , D e ) that quantifies the relationship between electrolyte dosage and capacity utilization in ultra‐thick electrodes (&gt;100.0 µm), enabling precise determination of the minimal electrolyte requirement (1.1 g Ah −1 ). Through systematic investigation of electrolyte compatibility with high‐loading cathodes (&gt; 10.0 mAh cm −2 ) at high voltages (4.8 V), we develop an optimized formulation that forms stable interfaces while suppressing parasitic reactions. By integrating these advances—including a lightweight lithium metal anode—we demonstrate a 54.2 Ah pouch cell achieving 769 Wh kg −1 , representing a 150% improvement over conventional lithium‐ion batteries. This work provides both theoretical and practical frameworks for engineering next‐generation batteries through electrolyte minimization and interface stabilization.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 14, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (20)

S

Shuo Zhang

Y

Yuyang Lu

Department of Chemistry

C

Chong Yan

School of Materials Science and Engineering

X

Xiangbiao Liao

C

Chen‐Zi Zhao

State Key Laboratory of Chemical Engineering and Low‐Carbon Technology Beijing Key Laboratory of Complex Solid‐State Batteries Department of Chemical Engineering Tsinghua University Beijing P. R. China

J

Jun‐Wei Zhao

School of Materials Science and Engineering Beijing Institute of Technology Beijing P.R. China

Z

Zhiyuan Dong

Yangtze River Delta Graduate School Beijing Institute of Technology Jiaxing P.R. China

Z

Zhenwei Zhu

Beijing Key Laboratory of Advanced Chemical Energy Storage Technologies and Materials Research Institute of Chemical Defense Beijing P. R. China

W

Wenjie Meng

X

Xue‐Fei Wen

Shanxi Research Institute for Clean Energy Tsinghua University Taiyuan 030032 P. R. China

P

Peng Wu

J

Jian Pei

M

Meng‐Yao Wang

Shanxi Research Institute for Clean Energy Tsinghua University Taiyuan P. R. China

X

Xue‐Kun Cao

Shanxi Research Institute For Clean Energy Tsinghua University Taiyuan P.R. China

J

Jiang‐Kui Hu

Advanced Research Institute of Multidisciplinary Science Beijing Institute of Technology Beijing 100081 P.R. China

X

Xiang Chen

J

Jingyi Qiu

H

Hao Zhang

J

Jia‐Qi Huang

School of Interdisciplinary Science Beijing Institute of Technology Beijing P. R. China

Q

Qiang Zhang