Ultrastable Calcium Metal Anodes Enabled by a Strongly Coordinated Electrolyte Derived Bilayer Solid Electrolyte Interphase

H Huijun Lin (State Key Laboratory of Ultra‐precision Machining Technology Department of Industrial and Systems Engineering The Hong Kong Polytechnic University Hung Hom Hong Kong 999077 P. R. China) Z Zhen Zhan (Department of Applied Physics) H Hongxi Zeng (School of Engineering The University of Edinburgh Edinburgh EH9 3DW UK) R Renjie Li (Songshan Lake Materials Laboratory) Y Yuyang Yi F Feiyang Chen (Department of Chemical and Biomolecular Engineering, University of California) S Songhua Cai Y Ye Zhu C Chi Fai Cheung (State Key Laboratory of Ultra‐precision Machining Technology Department of Industrial and Systems Engineering The Hong Kong Polytechnic University Hung Hom Hong Kong 999077 P. R. China) Z Zheng‐Long Xu (Department of Industrial and Systems Engineering The Hong Kong Polytechnic University Hong Kong P. R. China)

Abstract

Abstract Calcium (Ca) metal battery is a promising alternative to current lithium battery chemistry due to the high crustal abundance of Ca element and potentially dendrite‐free cycling of high‐capacity Ca metal anodes. However, reversible Ca metal stripping and plating have been hindered by the lack of effective electrolytes and the formation of obstructive solid electrolyte interphase (SEI) layers. Here a strongly coordinated electrolyte system by incorporating LiB(hfip) 4 into Ca[B(hfip) 4 ] 2 /glyme solutions is introduced. The highly coordinated glyme molecules and B(hfip) 4 − anions are ready to decompose into organic rich compounds and CaH 2 , CaB 2 O 4 nanocrystals in the SEI layers on Ca metal surface. Transmission electron microscopy observations reveal that these ionically conductive inorganic particles are embedded beneath the organic‐rich outer layer, thus forming a bilayer SEI configuration. This unique structure facilitates efficient Ca‐ion transfer while preventing further electrolyte decomposition. Effectiveness of this electrolyte is evidenced by the ultrastable Ca//Ca symmetrical cells (over 1450 h with low potentials of <0.5 V vs. Ca/Ca 2+ at a high current density of 2 mA cm −2 ) and the high‐energy Ca//polyaniline full cells (energy densities of above 200 Wh kg −1 over 200 cycles), which set new benchmarks in the field of room‐temperature Ca metal batteries.

Article Details

Volume / Issue Vol. 37, Issue 48
Published December 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

H

Huijun Lin

State Key Laboratory of Ultra‐precision Machining Technology Department of Industrial and Systems Engineering The Hong Kong Polytechnic University Hung Hom Hong Kong 999077 P. R. China

Z

Zhen Zhan

Department of Applied Physics

H

Hongxi Zeng

School of Engineering The University of Edinburgh Edinburgh EH9 3DW UK

R

Renjie Li

Songshan Lake Materials Laboratory

Y

Yuyang Yi

F

Feiyang Chen

Department of Chemical and Biomolecular Engineering, University of California

S

Songhua Cai

Y

Ye Zhu

C

Chi Fai Cheung

State Key Laboratory of Ultra‐precision Machining Technology Department of Industrial and Systems Engineering The Hong Kong Polytechnic University Hung Hom Hong Kong 999077 P. R. China

Z

Zheng‐Long Xu

Department of Industrial and Systems Engineering The Hong Kong Polytechnic University Hong Kong P. R. China