Engineering & Technologyarticle2026-08-14

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

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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.

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View paper (DOI)OpenAlexAdvanced MaterialsPublished 2026-08-14

Authors: Shuo Zhang, Yuyang Lu, Chong Yan, Xiangbiao Liao, Chen‐Zi Zhao, Junwei Zhao, Zhiyuan Dong, Zhenwei Zhu, Wenjie Meng, Xue‐Fei Wen, Peng Wu, Jian Pei, Mengyao Wang, Xue‐Kun Cao, Jiang‐Kui Hu, Xiang Chen, Jingyi Qiu, Hao Zhang, Jia‐Qi Huang, Qiang Zhang

Institutions: Tsinghua University, Shanxi University, Yangtze River Delta Physics Research Center (China), Beijing Institute of Technology, Beijing Electronic Science and Technology Institute, Laboratoire de physique des Solides, Advanced Energy Materials (United States)