LiF‐Rich Solid Electrolyte Interphase Formation by Establishing Sacrificial Layer on the Separator

Author:

Jin Huding12,Pyo Seonmi3,Seo Harim4,Cho Jinil5,Han Junghyup2,Han Juyeon4,Yun Heejun5,Kim Heebae2,Lee Jeewon2,Min Byeongyun2,Yoo Jeeyoung4,Kim Youn Sang1256ORCID

Affiliation:

1. Institute of Chemical Processes Seoul National University Gwanak‐ro 1, Gwanak‐gu Seoul 08826 Republic of Korea

2. Department of Chemical and Biological Engineering and Institute of Chemical Processes College of Engineering Seoul National University Gwanak‐ro 1, Gwanak‐gu Seoul 08826 Republic of Korea

3. Battery Manufacturing Engineering Research & Development Team Hyundai Motor Group 37, Cheoldobangmulgwan‐ro, Uiwang‐si Gyeonggi‐do 16082 Republic of Korea

4. School of Energy Engineering Kyungpook National University Daehak‐ro 80, Buk‐gu Daegu 41566 Republic of Korea

5. Program in Nano Science and Technology Graduate School of Convergence Science and Technology Seoul National University Gwanak‐ro 1, Gwanak‐gu Seoul 08826 Republic of Korea

6. Advanced Institute of Convergence Technology 145 Gwanggyo‐ro, Yeongtong‐gu Suwon 16229 Republic of Korea

Abstract

AbstractThe formation of a stable solid electrolyte interphase (SEI) layer is crucial for enhancing the safety and lifespan of Li metal batteries. Fundamentally, a homogeneous Li+ behavior by controlling the chemical reaction at the anode/electrolyte interface is the key to establishing a stable SEI layer. However, due to the highly reactive nature of Li metal anodes (LMAs), controlling the movement of Li+ at the anode/electrolyte interface remains challenging. Here, an advanced approach is proposed for coating a sacrificial layer called fluorinated self‐assembled monolayer (FSL) on a boehmite‐coated polyethylene (BPE) separator to form a stable SEI layer. By leveraging the strong affinity between the fluorine functional group and Li+, the rapid formation of a LiF‐rich SEI layer in the cell production and early cycling stage is facilitated. This initial stable SEI formation promotes the subsequent homogeneous Li+ flux, thereby improving the LMA stability and yielding an enhanced battery lifespan. Further, the mechanism behind the stable SEI layer generation by controlling the Li+ dynamics through the FSL‐treated BPE separator is comprehensively verified. Overall, this research offers significant contributions to the energy storage field by addressing challenges associated with LMAs, thus highlighting the importance of interfacial control in achieving a stable SEI layer.

Publisher

Wiley

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