Additive-assisted quasi-dry process enabling freestanding sulfide electrolyte films for all-solid-state batteries

Sulfide solid-state electrolyte films that combine thinness, high ionic conductivity and large-area feasibility are needed to improve energy density and enable industrial-scale production of all-solid-state batteries. However, workable processing methods to integrate these critical features remain technically challenging. Herein, we demonstrate a quasi-dry process utilizing an organic additive (i.e., α-pinene), through which the fabricated sulfide electrolyte films successfully integrate all the aforementioned merits. α-Pinene is chemically compatible with Li5.5PS4.5Cl1.5, improves film flexibility via stress dissipation, enhances ionic conductivity by promoting a more even distribution of the polytetrafluoroethylene binder, and facilitates film densification through lubrication. The resultant films with enhanced densification (porosity reduced from 12.24% to 7.78%) retain over 85% ionic conductivity of the pristine powder, exhibit an ionic conductivity of 4.79 mS/cm at 25 °C, with a thickness of 28 μm and lateral dimensions of 30 × 10 cm2. The Li4Ti5O12 | Li5.5PS4.5Cl1.5 | [email protected] full cells present a capacity retention of 93% after 500 cycles at 1 C under 2 MPa. At the stack level, a 50 mAh pouch cell retains 83% capacity after 1000 cycles at 0.5 C under 2 MPa. This work proposes an additive-assisted quasi-dry process, paving a pathway for material-process optimization toward potentially scalable fabrication of all-solid-state batteries. Thin sulfide electrolyte film could raise energy density of solid state battery, but producing thin, highly conductive film remains difficult. Here, authors develop an α-pinene assisted quasi-dry process to improve film quality and demonstrate a pouch cell retaining 83% capacity after 1000 cycles.

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Publication Details

Journal
Nature Communications
Published
2026-09-10
DOI
https://doi.org/10.1038/s41467-026-77590-1
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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article

Additive-assisted quasi-dry process enabling freestanding sulfide electrolyte films for all-solid-state batteries

Yunlong Guo, Ziyang Ning, Dunjie Yang, Chuying Ouyang et al.
Nature Communications
Advanced Battery Materials and Technologies
article

Additive-assisted quasi-dry process enabling freestanding sulfide electrolyte films for all-solid-state batteries

Yunlong Guo, Ziyang Ning, Dunjie Yang, Chuying Ouyang, Yongxing Shen, Linsen Li, Shou‐Hang Bo, Yanming Wang, Shiwei Chen, Yihao Chen, Xinyu Yu, Jixin Wu, Yilin Chen, Pauline Wang, Chunya Lou, Jia Li
article en

Abstract

Sulfide solid-state electrolyte films that combine thinness, high ionic conductivity and large-area feasibility are needed to improve energy density and enable industrial-scale production of all-solid-state batteries. However, workable processing methods to integrate these critical features remain technically challenging. Herein, we demonstrate a quasi-dry process utilizing an organic additive (i.e., α-pinene), through which the fabricated sulfide electrolyte films successfully integrate all the aforementioned merits. α-Pinene is chemically compatible with Li5.5PS4.5Cl1.5, improves film flexibility via stress dissipation, enhances ionic conductivity by promoting a more even distribution of the polytetrafluoroethylene binder, and facilitates film densification through lubrication. The resultant films with enhanced densification (porosity reduced from 12.24% to 7.78%) retain over 85% ionic conductivity of the pristine powder, exhibit an ionic conductivity of 4.79 mS/cm at 25 °C, with a thickness of 28 μm and lateral dimensions of 30 × 10 cm2. The Li4Ti5O12 | Li5.5PS4.5Cl1.5 | [email protected] full cells present a capacity retention of 93% after 500 cycles at 1 C under 2 MPa. At the stack level, a 50 mAh pouch cell retains 83% capacity after 1000 cycles at 0.5 C under 2 MPa. This work proposes an additive-assisted quasi-dry process, paving a pathway for material-process optimization toward potentially scalable fabrication of all-solid-state batteries. Thin sulfide electrolyte film could raise energy density of solid state battery, but producing thin, highly conductive film remains difficult. Here, authors develop an α-pinene assisted quasi-dry process to improve film quality and demonstrate a pouch cell retaining 83% capacity after 1000 cycles.

Nature Communications
Shanghai Jiao Tong University (CN), Institute of Contemporary History (SI), Jiangxi Normal University (CN)
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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