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Induction Effect of Fluorine-grafted Polymer-based Electrolytes for High-Performance Lithium Metal Batteries
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Energy Science.ORCID iD: 0009-0006-7967-8595
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Energy Science.ORCID iD: 0000-0001-5551-7101
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Energy Science.
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Energy Science.ORCID iD: 0009-0005-8673-2097
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2025 (English)In: Nano-Micro Letters, ISSN 2150-5551, article id 256Article in journal (Refereed) Published
Abstract [en]

Quasi-solid-state composite electrolytes (QSCEs) show promise for high-performance solid-state batteries, while they still struggle with interfacial stability and cycling performance. Herein, a F-grafted QSCE (F-QSCE) was developed via copolymerizing the F monomers and ionic liquid monomers. The F-QSCE demonstrates better overall performance, such as high ionic conductivity of 1.21 mS cm–1 at 25 °C, wide electrochemical windows of 5.20 V, and stable cycling stability for Li//Li symmetric cells over 4000 h. This is attributed to the significant electronegativity difference between C and F in the fluorinated chain (‒CF2‒CF‒CF3), which causes the electron cloud to shift toward the F atom, surrounding it with a negative charge and producing the inductive effect. Furthermore, the interactions between Li+ and F, TFSI‒, and C are enhanced, reducing ion pair aggregation (Li+‒TFSI‒‒Li+) and promoting Li+ transport. Besides, ‒CF2‒CF‒CF3 decomposes to form LiF preferentially over TFSI–, resulting in better interfacial stability for F-QSCE. This work provides a pathway to enable the development of high-performance Li metal batteries.

Place, publisher, year, edition, pages
Springer Nature, 2025. article id 256
Keywords [en]
Fluorine-grafted polymer, Induction effect, High interface stability, Quasi-solid-state electrolytes, Lithium metal battery
National Category
Energy Engineering
Research subject
Energy Engineering; Area of Future Importance - CREATERNITY
Identifiers
URN: urn:nbn:se:ltu:diva-110182DOI: 10.1007/s40820-025-01738-9ISI: 001487352600002PubMedID: 40358855Scopus ID: 2-s2.0-105004920771OAI: oai:DiVA.org:ltu-110182DiVA, id: diva2:1902045
Funder
VinnovaEU, Horizon 2020, 958174Swedish Energy AgencyThe Swedish Foundation for International Cooperation in Research and Higher Education (STINT), CH2019-8287Swedish National Infrastructure for Computing (SNIC)Bio4EnergyJ. Gust. Richert stiftelse
Note

Validerad;2025;Nivå 2;2025-05-15 (u4);

Research funders: National Natural Science Foundation of China (No. U23A20122);

Fulltext license: CC BY;

This article has previously appeared as a manuscript in a thesis.

Available from: 2024-10-01 Created: 2024-10-01 Last updated: 2025-06-24Bibliographically approved
In thesis
1. Confining ionic liquids to develop high-performance quasi-solid-state composite electrolytes
Open this publication in new window or tab >>Confining ionic liquids to develop high-performance quasi-solid-state composite electrolytes
2024 (English)Licentiate thesis, comprehensive summary (Other academic)
Abstract [en]

Composite solid electrolytes (SCEs) are developed to overcome the limitations of inorganic solid-state electrolytes (ISSEs) and solid polymer electrolytes (SPEs). ISSEs have high stability and conductivity but suffer from high interfacial impedance and poor machinability, while SPEs are flexible but have low room-temperature conductivity and a narrow electrochemical window. SCEs combine the benefits of both by integrating polymers with inorganic materials like oxides. Despite some improvements, SCEs still do not fully meet practical needs. To enhance performance, researchers are developing quasi-solid-state composite electrolytes (QSCEs) by adding ionic liquids (ILs), utilizing IL-confinement strategies, and modifying polymers for better suitability in lithium metal batteries.

The overall goal of this thesis is to develop QSCEs with improved ionic conductivity, a wide electrochemical stability window, and good interface stability to lithium metal, using the IL-confinement strategy. The key advancements achieved in this thesis are as follows:

1. In the first part, the review summarized and explored IL confinement in various quasi-solid-state electrolytes (QSSEs), including polymer/IL, host/IL, and polymer/filler/IL systems, discussing the impact of factors like substrates and confinement methods. It compared IL confinement in QSSEs with general IL confinement in other fields, noting that IL confinement enhanced electrolyte performance and differed significantly in the battery context. The study highlights the specific differences between confined IL and bulk IL on electrolyte performance remain unclear and require further investigation.

2. In the second part, the effects of confined IL on electrolyte properties and performance were investigated, with a focus on the Li+ transport mechanism. Confined QSCEs were prepared by confining IL within SiO2 (SiO2@IL-C), combined with LiTFSI and PEO. For comparison, unconfined QSCEs were produced by directly mixing all compositions. The electrochemical results showed that confined QSCEs outperformed unconfined QSCEs, exhibiting higher ionic conductivity, Li+ transference number, and more stable stripping/plating cycling over 1900 hours. Molecular dynamics (MD) simulations and density functional theory (DFT) calculations revealed that the confined QSCEs create a novel Li+ transport pathway (Li+ → SiO2@IL-C), enhancing Li+ transfer and thereby improving the performance of the confined QSCEs.

3. In the third part, a fluorine-grafted QSCE (F–QSCE) with the SiO2@IL filler was developed. For comparison, a non-fluorinated QSCE was prepared. The F–QSCE demonstrates good properties, including high ionic conductivity (1.21 mS cm‒1 at 25 °C), wide electrochemical window (5.20 V), and over 4000 h of cycling stability in Li//Li symmetric cells. When paired with a LiFePO4 cathode, it retains 98.8% capacity after 460 cycles, while with a high-voltage NCM622 cathode, it retains nearly 100% capacity after 350 cycles. The theoretical studies revealed that the fluorine reduces the interaction and coordination number of polymer-Li+, thus enhancing overall electrolyte performance.

Place, publisher, year, edition, pages
Luleå: Luleå University of Technology, 2024. p. 68
Series
Licentiate thesis / Luleå University of Technology, ISSN 1402-1757
Keywords
Ionic liquids, confinement, quasi-solid-state composite electrolytes, Li metal batteries
National Category
Energy Engineering Polymer Technologies
Research subject
Energy Engineering
Identifiers
urn:nbn:se:ltu:diva-110174 (URN)978-91-8048-650-7 (ISBN)978-91-8048-651-4 (ISBN)
Presentation
2024-11-29, F341, Luleå University of Technology, Luleå, 10:00 (English)
Opponent
Supervisors
Funder
EU, Horizon 2020, 958174VinnovaJ. Gust. Richert stiftelse
Note

Research funder: LTU Creaternity

Available from: 2024-10-02 Created: 2024-10-01 Last updated: 2024-11-08Bibliographically approved

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Hu, HaimanLi, JiajiaLin, FeiHuang, JiaqiZheng, HuaiyangJi, Xiaoyan

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