Impact of Solvent Impurities from Upscaled Synthesis and Their Purification in Lithium Metal Batteries

Abstract Fluorinated ether electrolytes are promising for high-energy-density lithium metal batteries, yet their translation to larger-scale production requires systematic control of solvent impurities generated during synthesis and purification. Using 2-(2-(2,2-difluoroethoxy)ethoxy)–1,1,1-trifluoroethane (F5DEE) as a high-performance model solvent, we compare gram- and kilogram-scale batches to correlate impurity origin, purification, and electrochemistry. Although upscaled F5DEE shows >99% purity by standard techniques, ppm-level moisture and organic impurities reduce Li Coulombic efficiency and increase cell variability. We classify impurities by generation pathway into retained intermediates, starting-material-derived analogues, side-reaction products, and purification-introduced residues. Distillation, adsorption, and reactive purification implicate water, alkoxide-derived byproducts, and amines as key performance-limiting species. However, excessive purification generates secondary impurities that degrade performance, revealing a removal–generation trade-off. Thermal, electrochemical, operando microcalorimetry, and online mass spectrometry analyses reveal impurity-dependent current-collector corrosion, heat release, gas evolution, and full-cell degradation. This route-resolved, source-to-consequence workflow provides a transferable qualification framework for electrolyte solvent scale-up.

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Publication Details

Journal
ACS Energy Letters
Published
2026-09-29
DOI
https://doi.org/10.1021/acsenergylett.6c02137
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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article

Impact of Solvent Impurities from Upscaled Synthesis and Their Purification in Lithium Metal Batteries

Zehao Cui, M. Stanley Whittingham, Yangju Lin, Trevor L. Dzwiniel et al.
ACS Energy Letters
Advanced Battery Materials and Technologies
article

Impact of Solvent Impurities from Upscaled Synthesis and Their Purification in Lithium Metal Batteries

Zehao Cui, M. Stanley Whittingham, Yangju Lin, Trevor L. Dzwiniel, Yuelang Chen, Tianyang Chen, Fenghua Guo, Il Rok Choi, Arumugam Manthiram, Hao Lyu, Elizabeth Zhang, Zhenan Bao, Hui Zhou, Chen Liu, Jonathan Miller, Gan Chen
article en

Abstract

Abstract Fluorinated ether electrolytes are promising for high-energy-density lithium metal batteries, yet their translation to larger-scale production requires systematic control of solvent impurities generated during synthesis and purification. Using 2-(2-(2,2-difluoroethoxy)ethoxy)–1,1,1-trifluoroethane (F5DEE) as a high-performance model solvent, we compare gram- and kilogram-scale batches to correlate impurity origin, purification, and electrochemistry. Although upscaled F5DEE shows >99% purity by standard techniques, ppm-level moisture and organic impurities reduce Li Coulombic efficiency and increase cell variability. We classify impurities by generation pathway into retained intermediates, starting-material-derived analogues, side-reaction products, and purification-introduced residues. Distillation, adsorption, and reactive purification implicate water, alkoxide-derived byproducts, and amines as key performance-limiting species. However, excessive purification generates secondary impurities that degrade performance, revealing a removal–generation trade-off. Thermal, electrochemical, operando microcalorimetry, and online mass spectrometry analyses reveal impurity-dependent current-collector corrosion, heat release, gas evolution, and full-cell degradation. This route-resolved, source-to-consequence workflow provides a transferable qualification framework for electrolyte solvent scale-up.

ACS Energy Letters
Binghamton University (US), Argonne National Laboratory (US), Lawrence Berkeley National Laboratory (US), The University of Texas at Austin (US), Stanford University (US)
Openalex Percentile: Top 22%
Advanced Battery Materials and Technologies
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