Decoupling Stiffness and Toughness in Solid Polymer Electrolytes via Reversible Crystallization

Solid polymer electrolytes (SPEs) are polymer-based, flexible, and nonflammable electrolytes, making them promising candidates for developing highly stretchable electrochemical devices. However, in conventional designs, toughness improvement is typically coupled with an increase in stiffness. This coupling often arises from the introduction of thermally reversible crystals (TRCs) of polymer, resulting in high stiffness, brittleness, and poor conformability to electrodes. In this study, we develop a material design strategy to decouple toughness from stiffness in SPEs using strain-induced crystallization (SIC) in a homogeneous four-branched poly(ethylene glycol) (Tetra-PEG) network. SIC significantly enhances the toughness without increasing the stiffness, enabling the formation of soft, tough, and stretchable SPEs. Building on this decoupled platform, stiffness was reintroduced through TRCs of PEG, yielding SPEs that were both stiff and highly fracture-resistant. Importantly, upon heating, these materials exhibited thermoplastic behavior, which improved their conformability to metal electrodes. Consequently, Li|Tetra-PEG SPE|Li symmetric cells exhibited reversible lithium plating and stripping with stable long-term cycling. Overall, the proposed design strategy effectively decouples toughness from stiffness, thereby overcoming the conventional trade-offs in SPEs.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-06-06
DOI
https://doi.org/10.1021/acsami.6c05382
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Decoupling Stiffness and Toughness in Solid Polymer Electrolytes via Reversible Crystallization

Kei Hashimoto, Shoichi Kutsumizu, Koichi Mayumi, Ryota Tamate et al.
ACS Applied Materials & Interfaces
Advanced Battery Materials and Technologies
article

Decoupling Stiffness and Toughness in Solid Polymer Electrolytes via Reversible Crystallization

Kei Hashimoto, Shoichi Kutsumizu, Koichi Mayumi, Ryota Tamate, Kei Nishikawa, Yohei Miwa, Yuji Kamiyama, Takamasa Sakai, Shuto Fujisawa
article en

Abstract

Solid polymer electrolytes (SPEs) are polymer-based, flexible, and nonflammable electrolytes, making them promising candidates for developing highly stretchable electrochemical devices. However, in conventional designs, toughness improvement is typically coupled with an increase in stiffness. This coupling often arises from the introduction of thermally reversible crystals (TRCs) of polymer, resulting in high stiffness, brittleness, and poor conformability to electrodes. In this study, we develop a material design strategy to decouple toughness from stiffness in SPEs using strain-induced crystallization (SIC) in a homogeneous four-branched poly(ethylene glycol) (Tetra-PEG) network. SIC significantly enhances the toughness without increasing the stiffness, enabling the formation of soft, tough, and stretchable SPEs. Building on this decoupled platform, stiffness was reintroduced through TRCs of PEG, yielding SPEs that were both stiff and highly fracture-resistant. Importantly, upon heating, these materials exhibited thermoplastic behavior, which improved their conformability to metal electrodes. Consequently, Li|Tetra-PEG SPE|Li symmetric cells exhibited reversible lithium plating and stripping with stable long-term cycling. Overall, the proposed design strategy effectively decouples toughness from stiffness, thereby overcoming the conventional trade-offs in SPEs.

ACS Applied Materials & Interfaces
National Institute for Materials Science (JP), Kavli Institute for the Physics and Mathematics of the Universe (JP), Gifu University (JP), The University of Tokyo (JP)
Japan Society for the Promotion of Science, Japan Science and Technology Agency
Openalex Percentile: Top 9%
Advanced Battery Materials and Technologies
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