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Anchoring safety and stability: a novel electrolyte design for next-generation lithium batteries

02.11.26 | Shanghai Jiao Tong University Journal Center

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Solid-state electrolytes are widely considered the "holy grail" for safer, more energy-dense batteries, promising to replace flammable liquid electrolytes in everything from smartphones to electric vehicles. However, a major hurdle remains: achieving high ionic conductivity—the ease with which lithium ions move—while maintaining long-term stability.

Now, a research team from North China Electric Power University and the State Grid Shanxi Electric Power Company has developed a novel Gel Polymer Electrolyte (GPE) that tackles this challenge head-on. By chemically grafting a specialized salt onto a polymer backbone, the researchers have created a material that not only conducts ions efficiently but also forms a protective shield around the battery's anode, significantly extending its lifespan.

The study, published in the journal ENGINEERING Energy , details a new synthesis strategy involving the copolymerization of methyl methacrylate (MMA) with a long-chain quaternary ammonium salt known as C16DMAAC.

The Problem: Trade-offs in Traditional Designs Polymethyl methacrylate (PMMA)-based gel electrolytes are popular due to their good mechanical strength and ease of fabrication. However, they inherently suffer from low ionic conductivity. To fix this, scientists often blend in salts or fillers. "While blending with quaternary ammonium salts offers an effective solution, it often leads to salt deposition during cycling, compromising long-term stability," the authors explain. In simple terms, loose salt additives can clump together over time, clogging the system and degrading performance.

The Solution: Chemical Anchoring Instead of just mixing the salt in, the research team chemically bonded (grafted) the C16DMAAC salt directly onto the PMMA polymer chains. This "in-situ copolymerization" ensures the salt molecules are uniformly distributed and locked in place, preventing them from aggregating.

This molecular engineering achieved three critical improvements:

Superior Performance in Real Batteries To prove the concept, the team built full battery cells using a high-performance NCM811 cathode. The results were impressive:

"This work presents a promising strategy for designing novel electrolyte structures by grafting quaternary ammonium salts into polymer chains to improve battery stability and lifespan," the researchers conclude. This advancement offers a clear pathway toward safer, longer-lasting batteries for the next generation of energy storage.

Journal Reference Information

JOURNAL: ENGINEERING Energy

DOI: https://doi.org/10.1007/s11708-026-1047-3

Article Link: https://link.springer.com/article/10.1007/s11708-026-1047-3

Cite this article: Yang D, Zhang S, Zhu D, et al. A novel design of C16DMAAC-modified solid-state polymer electrolyte reinforcing battery stability and lifetime. ENGINEERING Energy, 2026, 20(2): 10473. https://doi.org/10.1007/s11708-026-1047-3

10.1007/s11708-026-1047-3

News article

A novel design of C16DMAAC-modified solid-state polymer electrolyte reinforcing battery stability and lifetime

1-Jan-2026

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Contact Information

Bowen Li
Shanghai Jiao Tong University Journal Center
qkzx@sjtu.edu.cn

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How to Cite This Article

APA:
Shanghai Jiao Tong University Journal Center. (2026, February 11). Anchoring safety and stability: a novel electrolyte design for next-generation lithium batteries. Brightsurf News. https://www.brightsurf.com/news/8X5DD2M1/anchoring-safety-and-stability-a-novel-electrolyte-design-for-next-generation-lithium-batteries.html
MLA:
"Anchoring safety and stability: a novel electrolyte design for next-generation lithium batteries." Brightsurf News, Feb. 11 2026, https://www.brightsurf.com/news/8X5DD2M1/anchoring-safety-and-stability-a-novel-electrolyte-design-for-next-generation-lithium-batteries.html.