Quantifying the Correlation Between Capacity Utilization and Electrolyte Dosage for Ultrahigh‐Energy‐Density 769 Wh Kg <sup>−1</sup> Rechargeable Lithium Metal Batteries
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 (>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 (> 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
Authors (20)
Shuo Zhang
Yuyang Lu
Department of Chemistry
Chong Yan
School of Materials Science and Engineering
Xiangbiao Liao
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
Jun‐Wei Zhao
School of Materials Science and Engineering Beijing Institute of Technology Beijing P.R. China
Zhiyuan Dong
Yangtze River Delta Graduate School Beijing Institute of Technology Jiaxing P.R. China
Zhenwei Zhu
Beijing Key Laboratory of Advanced Chemical Energy Storage Technologies and Materials Research Institute of Chemical Defense Beijing P. R. China
Wenjie Meng
Xue‐Fei Wen
Shanxi Research Institute for Clean Energy Tsinghua University Taiyuan 030032 P. R. China
Peng Wu
Jian Pei
Meng‐Yao Wang
Shanxi Research Institute for Clean Energy Tsinghua University Taiyuan P. R. China
Xue‐Kun Cao
Shanxi Research Institute For Clean Energy Tsinghua University Taiyuan P.R. China
Jiang‐Kui Hu
Advanced Research Institute of Multidisciplinary Science Beijing Institute of Technology Beijing 100081 P.R. China
Xiang Chen
Jingyi Qiu
Hao Zhang
Jia‐Qi Huang
School of Interdisciplinary Science Beijing Institute of Technology Beijing P. R. China
Qiang Zhang