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Analytical and Bioanalytical Chemistry|September 12, 2020
SERS-based lateral flow assay combined with machine learning for highly sensitive quantitative analysis of Escherichia coli O157:H7Shuaishuai Yan, Cheng Liu, Shuiqin Fang, et al.Nature Communications|April 20, 2022
Engineering a passivating electric double layer for high performance lithium metal batteriesWeili Zhang, Yang Lu, Lei Wan, et al.ACS Nano|October 2, 2023
Asymmetric Trihalogenated Aromatic Lithium Salt Induced Lithium Halide Rich Interface for Stable Cycling of All-Solid-State Lithium BatteriesShuaishuai Yan, Fengxiang Liu, Yu Ou, et al.Nano Letters|October 7, 2024
Trace Dual-Salt Electrolyte Additive Enabling a LiF-Rich Solid Electrolyte Interphase for High-Performance Lithium Metal BatteriesYingchun Xia, Wenhui Hou, Pan Zhou, et al.ACS Nano|May 1, 2023
Tuning the Li+ Solvation Structure by a "Bulky Coordinating" Strategy Enables Nonflammable Electrolyte for Ultrahigh Voltage Lithium Metal BatteriesYang Lu, Weili Zhang, Shengzhou Liu, et al.ACS Nano|August 14, 2023
Fluorinated Carbamate-Based Electrolyte Enables Anion-Dominated Solid Electrolyte Interphase for Highly Reversible Li Metal AnodeWen-Hui Hou, Pan Zhou, Honghui Gu, et al.Science Advances|January 31, 2025
Selectively fluorinated aromatic lithium salts regulate the solvation structure and interfacial chemistry for all-solid-state batteriesShuaishuai Yan, Hao Liu, Yang Lu, et al.ACS Nano|September 1, 2023
Tuning and Balancing the Donor Number of Lithium Salts and Solvents for High-Performance Li Metal AnodePan Zhou, Wenhui Hou, Yingchun Xia, et al.Journal of the American Chemical Society|January 13, 2026
Rational Lithium Salt Selection Principle for Designing High-Entropy Electrolytes toward High-Performance Lithium Metal BatteriesYingchun Xia, Da Zhu, Wenhui Hou, et al.Angewandte Chemie (International Ed. in English)|April 7, 2025
Self-Compartmented Electrolyte Design for Stable Cycling of Lithium Metal Batteries under Extreme ConditionsYu Ou, Da Zhu, Pan Zhou, et al.Pageof 3