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Desolvation is an important step before the solvated ions can intercalate into the electrode material. This interfacial process involves different desolvation stages, physical phases, and intertwined kinetics and thermodynamics. Thus, the impacts of solid electrolyte interphase (SEI) components on Li desolvation remain poorly understood at a molecular scale though conventional simulations strive to accurately capture complex interfacial electronic interactions during desolvation. We hereby combined ab initio molecular dynamics (AIMD) and stepwise multisubphase space metadynamics to unravel Li desolvation and redox stability on common SEI components, LiF, LiCO, and lithium ethylene monocarbonate (LEMC). Desolvation energy barriers were found to vary significantly with specific SEI species and desolvation stages. The Li vacancies in SEI species enhance complete desolvation and subsequent charge transport. Charge density and density of states calculations further demonstrate that electrolyte redox stability is closely related to SEI components. These findings provide fundamental guidance for designing SEI chemistry to enhance Li desolvation, charge transport, and electrolyte redox stability. The combined AIMD and metadynamics framework accurately models complex interfacial dynamics and energetics, yielding reliable conclusions. It can be generalized to other critical interfacial studies, such as ion transport and surface/interface stability, for applications in metal anodes, electrocatalysis, electrodeposition, and corrosion prevention.
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http://dx.doi.org/10.1021/acsnano.5c09853 | DOI Listing |
J Colloid Interface Sci
September 2025
Key Laboratory of Automobile Materials, Ministry of Education and School of Materials Science and Engineering, Jilin University, Changchun 130022, China. Electronic address:
Neither single electrolyte design nor solid electrolyte interface (SEI) engineering alone can effectively resolve the dual challenges of sluggish reaction kinetics and unstable interfaces in polymer-based lithium metal batteries (LMBs). Herein, a rational integrated design strategy is adopted to simultaneously fabricate poly(trifluoroethyl methacrylate-co-4-oxo-5,8,11-trioxa-3-azatridec-12-en-1-yl acrylate)-based gel polymer electrolyte (PTDA-GPE) and stable composite SEI during the thermal-induced in situ polymerization process. The resulting PTDA-GPE demonstrates superior Li transport kinetics (1.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
State Key Laboratory for Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, School of Physics and Electronics, Hunan Key Laboratory of Two-Dimensional Materials, Chongqing Research Institute, Hunan University, Changsha, 410082, P.R. China.
Controlling the electrode-electrolyte interfacial behavior is crucial for achieving a high-quality solid electrolyte interphase (SEI) and ensuring sustainable battery performance. Here, we propose a selective catalysis strategy to stabilize antimony atom-cluster (Sb) anode/electrolyte interface for robust potassium-ion batteries (PIBs). Specifically, the electrode featuring Sb in porous carbon (Sb/PC) as "electrocatalyst" unduly catalyzes the reduction of the dimethyl ether-based electrolyte, resulting in loose SEI layer and rapid capacity decay.
View Article and Find Full Text PDFACS Nano
September 2025
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.
Desolvation is an important step before the solvated ions can intercalate into the electrode material. This interfacial process involves different desolvation stages, physical phases, and intertwined kinetics and thermodynamics. Thus, the impacts of solid electrolyte interphase (SEI) components on Li desolvation remain poorly understood at a molecular scale though conventional simulations strive to accurately capture complex interfacial electronic interactions during desolvation.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
August 2025
Frontiers Science Center for Transformative Molecules, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, China.
The application of the amine-based solvents (AS) in lithium metal batteries (LMBs) electrolyte is hindered by the severe parasitic reactions between active hydrogen and Li metal. In this study, we synthesized a methylated AS (N, N-dimethylurethane, NDMUE), by replacing the reactive hydrogen with a methyl group. We further demonstrated its performance as a single-component solvent for LMB electrolytes.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
College of New Energy and Materials, State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Beijing, Changping 102249, China. Electronic address:
The structure and composition of the solid electrolyte interphase (SEI) exerts a significant influence on the fast-charging capability and stability of lithium-ion batteries (LIBs). However, elucidating the design principles governing anode interfacial structures and revealing the kinetics and mechanisms of Li transport remain challenging. SEI layer.
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