Lewis Acid‐Enabled Functional SEI/CEI Design for Durable Lithium Metal Batteries

ABSTRACT The development of practical lithium metal batteries requires facile strategies that simultaneously stabilize anode and cathode interfaces while eliminating their native surface oxides. However, the reported research could rarely achieve this dual functionality. Herein, we have developed a dual‐side‐modification strategy using tributylphosphonium tetrafluoroborate (TBPFB) as a Lewis acid to synchronously eliminate the heterogeneous native oxide layers and reconstruct multifunctional inorganic interfaces on both the cathode and anode. The constructed artificial interface on the lithium anode contains LiF, LiBO 2 , Li 3 P, and Li 3 PO 4 , boosting the anode stability by reducing the Li + desolvation barrier and enabling uniform Li + transport. Meanwhile, the LiF‐rich LiNi 0.8 Co 0.1 Mn 0.1 O 2 (NCM811) cathode interface suppresses side reactions and particle cracking, protecting the cathode from transition metal dissolution. Based on the benefits brought by the multifunctional interfaces, the Li||Li symmetric cells achieve a cycling lifespan of over 1700 h, while the Li||NCM811 full cells retain 77% capacity after 500 cycles. Additionally, a 2 Ah pouch cell with an energy density of 423.1 Wh kg −1 maintains over 90% capacity after 100 cycles. This work provides a simple but highly efficient surface modification strategy that stabilizes the most critical interfaces in lithium metal batteries.

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Publication Details

Journal
Advanced Energy Materials
Published
2026-09-12
DOI
https://doi.org/10.1002/aenm.71548
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Lewis Acid‐Enabled Functional SEI/CEI Design for Durable Lithium Metal Batteries

Li Ma, Gang Huang, Xinbo Zhang, Fuchen Song et al.
Advanced Energy Materials
Advanced Battery Materials and Technologies
article

Lewis Acid‐Enabled Functional SEI/CEI Design for Durable Lithium Metal Batteries

Li Ma, Gang Huang, Xinbo Zhang, Fuchen Song, Luning Miao
article en

Abstract

ABSTRACT The development of practical lithium metal batteries requires facile strategies that simultaneously stabilize anode and cathode interfaces while eliminating their native surface oxides. However, the reported research could rarely achieve this dual functionality. Herein, we have developed a dual‐side‐modification strategy using tributylphosphonium tetrafluoroborate (TBPFB) as a Lewis acid to synchronously eliminate the heterogeneous native oxide layers and reconstruct multifunctional inorganic interfaces on both the cathode and anode. The constructed artificial interface on the lithium anode contains LiF, LiBO 2 , Li 3 P, and Li 3 PO 4 , boosting the anode stability by reducing the Li + desolvation barrier and enabling uniform Li + transport. Meanwhile, the LiF‐rich LiNi 0.8 Co 0.1 Mn 0.1 O 2 (NCM811) cathode interface suppresses side reactions and particle cracking, protecting the cathode from transition metal dissolution. Based on the benefits brought by the multifunctional interfaces, the Li||Li symmetric cells achieve a cycling lifespan of over 1700 h, while the Li||NCM811 full cells retain 77% capacity after 500 cycles. Additionally, a 2 Ah pouch cell with an energy density of 423.1 Wh kg −1 maintains over 90% capacity after 100 cycles. This work provides a simple but highly efficient surface modification strategy that stabilizes the most critical interfaces in lithium metal batteries.

Advanced Energy Materials
University of Science and Technology of China (CN), Jilin University (CN), Changchun Institute of Applied Chemistry (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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Lewis Acid‐Enabled Functional SEI/CEI Design for Durable Lithium Metal Batteries — Li Ma, Gang Huang, et al. · Advanced Energy Materials (2026) | TGRS Research Map | TGRS