Cosolvent Electrolyte Design for Li–S Batteries: Suppressing the Shuttle Effect via Phase Separation

C Changyu Yeo S Seungyeop Kang Y Yun‐Jeong Lee (Department of Chemical and Biological Engineering Korea University 145 Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea) S Seungwoo Choo (Department of Electronic Materials Engineering Kwangwoon University 60 Gwangun‐ro 1‐gil Nowon‐gu Seoul 01897 Republic of Korea) J Juyoung Kim (Department of Food Science and Nutrition, University of Minnesota) S Seung‐Ho Yu (Department of Chemical and Biological Engineering Korea University 145 Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea) J Jun‐Woo Park (Next Generation Battery Research Center Korea Electrotechnology Research Institute (KERI) Gyeongsangnam−do 51543 Republic of Korea) D Dong‐Joo Yoo (School of Mechanical Engineering Korea University 145 Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea) M Minkyung Kim (Department of Chemistry and Division of Advanced Materials Science)

Abstract

Abstract Lithium–sulfur batteries are promising candidates for next‐generation energy storage due to their high energy density and low cost. However, their commercialization is hindered by poor cycling performance caused by the polysulfide shuttle effect. While strategies such as physical barriers or chemical adsorption have been proposed, they inevitably introduce inactive components, reducing energy density. These limitations underscore the need for a more fundamental approach that avoids the use of inactive materials. In this study, a cosolvent‐based electrolyte design as a fundamental strategy is presented to suppress the shuttle effect without relying on inactive additives. A high donor number solvent is used as the base, and four cosolvents with distinct physicochemical properties are individually introduced. By varying the cosolvent, the lithium polysulfides solubility is systematically tuned, directly influencing electrochemical kinetics. Notably, the combination of two low‐miscibility solvents induced local phase separation, which hindered the diffusion of lithium polysulfides and effectively mitigated the shuttle effect. As a result, significantly improved cycling stability is achieved. These findings provide a new direction for Li–S battery electrolyte development, emphasizing the importance of solvent miscibility in governing polysulfide transport.

Article Details

Volume / Issue Vol. 38, Issue 5
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

C

Changyu Yeo

S

Seungyeop Kang

Y

Yun‐Jeong Lee

Department of Chemical and Biological Engineering Korea University 145 Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea

S

Seungwoo Choo

Department of Electronic Materials Engineering Kwangwoon University 60 Gwangun‐ro 1‐gil Nowon‐gu Seoul 01897 Republic of Korea

J

Juyoung Kim

Department of Food Science and Nutrition, University of Minnesota

S

Seung‐Ho Yu

Department of Chemical and Biological Engineering Korea University 145 Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea

J

Jun‐Woo Park

Next Generation Battery Research Center Korea Electrotechnology Research Institute (KERI) Gyeongsangnam−do 51543 Republic of Korea

D

Dong‐Joo Yoo

School of Mechanical Engineering Korea University 145 Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea

M

Minkyung Kim

Department of Chemistry and Division of Advanced Materials Science