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Abstract

Lithium metal batteries (LMBs) promise step-changes in energy densities but suffer from poor cycle life due to unstable electrolyte-lithium interfaces. Conventional carbonate electrolytes exhibit excessive lithium-ion solvation and low oxidative stability, leading to rapid capacity loss. Herein, we report a rationally designed weakly-solvating cyclic sulfonamide, 1-trifluoromethanesulfonyl)amide pyrrolidine (TFMSPyr), which integrates an electron-withdrawing trifluoromethanesulfonyl functional group at pyrrolidinic-N. TFMSPyr acts as a pre-ionic-liquid solvent that forms intrinsically localized, anion-dominated solvation, coupling molecular architecture, solvation topology, and transport dynamics. As a result, LiFSI based salt-in-pre-ionic-liquid (SIPIL) electrolytes exhibit high lithium-ion transference number, oxidative stability > 5 V versus Li/Li+ and anion-derived solid electrolyte interphases (SEI). Li||Cu cells with SIPIL deliver a first cycle Coulombic efficiency (CE) of ≈ 99% with average CE of 99.2% for 100 cycles, and lithium half-cells with lithium iron phosphate (LFP) cathode exhibit 82% capacity retention after 400 cycles with CE of 99.98%. In anode-free full cells, 95% of initial capacity is retained after 63 cycles with an average CE of 99.5%. These results demonstrate that molecular engineering of solvents offers a powerful pathway to stabilize lithium metal interfaces and enable practical Anodeless LMBs.

Original languageEnglish
JournalAdvanced Science
DOIs
StateAccepted/In press - 2026

Funding

This work was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, Materials Sciences and Engineering Division under contract number DE‐AC05‐00OR22725 with the US Department of Energy (DOE). The work at ORNL's Spallation Neutron Source was sponsored by the Scientific User Facilities Division, Office of Basic Energy Sciences, U.S. Department of Energy (DOE). The beam time was allocated to BASIS (BL‐2) on proposal number IPTS‐32443. This research used resources of the Compute and Data Environment for Science (CADES) at the Oak Ridge National Laboratory, which was supported by the Office of Science of the U.S. Department of Energy under Contract No. DE‐AC05‐00OR22725. A portion of the research was performed using computational resources sponsored by the Department of Energy's Office of Energy Efficiency and Renewable Energy and located at the National Laboratory of the Rockies. The cryo‐PFIB/SEM portion of this research was conducted as part of a user project at the Center for Nanophase Materials Sciences (CNMS), which was a US Department of Energy, Office of Science User Facility at Oak Ridge National Laboratory. Notes: This manuscript has been authored by UT‐Battelle, LLC, under contract number DE‐AC05‐00OR22725, with the US Department of Energy (DOE). The United States Government retains and the publisher, by accepting the article for publication, acknowledges that the United States Government retains a non‐exclusive, paid‐up, irrevocable, worldwide license to publish or reproduce the published form of this manuscript, or allow others to do so, for United States Government purposes. The DOE will provide public access to these results of federally sponsored research under the DOE Public Access Plan (http://energy.gov/downloads/doe‐public‐access‐plan).

Keywords

  • Li metal batteries (LMBs)
  • anodeless Li metal battery (ALMB)
  • molecular engineering
  • salt-in-pre-ionic-liquid (SIPIL)
  • trifluoromethanesulfonamide pyrrolidine (TFMSPyr)
  • weakly-solvating solvent

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