In Situ Co-Growth Lif-Li3n Rich Dual-Protective Layers Enable High Interface Stability for Solid-State Lithium-Metal Batteries

29 Pages Posted: 20 May 2024

See all articles by Kun Zeng

Kun Zeng

Yunnan University

Qing Liu

Yunnan University

Hang Ma

Yunnan University

Genfu Zhao

Yunnan University

Qi An

Yunnan University

Conghui Zhang

Yunnan University

Yongxin Yang

Yunnan University

Mengjiao Sun

Yunnan University

Qijun Xu

Yunnan University

Lingyan Duan

Yunnan University

Hong Guo

Yunnan University

Abstract

Lithium metal anodes hold promise for next-generation high-energy-density batteries. However, serious dendrite formation and unstable solid electrolyte interphase (SEI) impede their practical implementation. Herein, a novel gel polymer electrolyte (GPE) integrated design is exploited to in situ co-growth Li3N and LiF rich SEI by improving electron transfer kinetics and enhancing mechanical properties. Specifically, a polyethylene glycol diacrylate is used as GPE matrix to form a robust crosslinked network. Meanwhile, the high electron transport capacity of acrylonitrile promotes the generation of Li3N. The polyfluorinated polymer introduction boosts electron transfer kinetics, facilitating C-F bond cleavage to form LiF. Finally, the in situ co-growth Li3N and LiF rich dual-protective SEI is constructed, which regulates the ion flux and achieves dendrite-free lithium deposition. Impressively, the SEI treated symmetrical cell demonstrates excellent plating/stripping cycling for 1000 h at 0.5 mA cm−2 with notably reduced overpotentials (50 mV). Moreover, the obtained GEL@F matched with LiFePO4 displays good cycling stability over 400 cycles with 91.8% capacity retention at 1 C. Concurrently, paired with LiCoO2 drives a good capacity retention of over 82.8% after 200 cycles. This study introduces a rational SEI design from the structural composition of GPE to optimize the chemical activity/physical properties of lithium metal interfaces.

Keywords: lithium-metal batteries, LiF-Li3N rich SEI, in situ solidification, solid polymer electrolyte

Suggested Citation

Zeng, Kun and Liu, Qing and Ma, Hang and Zhao, Genfu and An, Qi and Zhang, Conghui and Yang, Yongxin and Sun, Mengjiao and Xu, Qijun and Duan, Lingyan and Guo, Hong, In Situ Co-Growth Lif-Li3n Rich Dual-Protective Layers Enable High Interface Stability for Solid-State Lithium-Metal Batteries. Available at SSRN: https://ssrn.com/abstract=4834858 or http://dx.doi.org/10.2139/ssrn.4834858

Kun Zeng

Yunnan University ( email )

Kunming, 650091
China

Qing Liu

Yunnan University ( email )

Kunming, 650091
China

Hang Ma

Yunnan University ( email )

Kunming, 650091
China

Genfu Zhao

Yunnan University ( email )

Kunming, 650091
China

Qi An

Yunnan University ( email )

Kunming, 650091
China

Conghui Zhang

Yunnan University ( email )

Kunming, 650091
China

Yongxin Yang

Yunnan University ( email )

Kunming, 650091
China

Mengjiao Sun

Yunnan University ( email )

Kunming, 650091
China

Qijun Xu

Yunnan University ( email )

Kunming, 650091
China

Lingyan Duan

Yunnan University ( email )

Kunming, 650091
China

Hong Guo (Contact Author)

Yunnan University ( email )

Kunming, 650091
China

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