Toward Zero‐Excess Alkali Metal Batteries: Bridging Experimental and Computational Insights

P Pan He (College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education) N Neubi Francisco Xavier (School of Chemistry and Chemical Engineering Faculty of Engineering and Physical Sciences University of Surrey Guildford GU2 7XH UK) M Matthias Johannes Golomb (School of Chemistry and Chemical Engineering Faculty of Engineering and Physical Sciences University of Surrey Guildford GU2 7XH UK) Y Yupei Han (Department of Chemistry University College London London WC1H 0AJ UK) Y Yuheng Du (School of Chemistry and Chemical Engineering Faculty of Engineering and Physical Sciences University of Surrey Guildford GU2 7XH UK) Q Qiong Cai (School of Chemistry and Chemical Engineering) Y Yang Xu

Abstract

Abstract This review introduces alkali metal (Li, Na, and K) anode‐less and anode‐free batteries and conveys a synopsis of the current challenges regarding anode‐electrolyte interfaces. The review focuses on a critical analysis of the fundamental understanding of the (eletro)chemical and (electro)physical processes occurring at the anode, including metal nucleation and dendrite growth, the properties of liquid and solid electrolytes, and their roles in the metal stripping/deposition process and the formation of solid‐electrolyte interphase, and the properties of separators and their role in inhibiting dendrite growth. Solutions to tackle the challenges for anode‐less and anode‐free batteries are discussed extensively in the aspects of the modifications of the anode substrate, novel electrolyte solutions and SEI structures, interface design, and novel separators/solid‐state electrolytes to enable stable battery performances. To highlight the importance of bridging experimental and computational insights, experimental progress derived from a range of advanced characterization techniques is analyzed in combination with the advancement in multi‐scale theory and computational modeling. Finally, outlooks are provided from both experimental and computational points of view for the exciting field of zero‐excess alkali metal batteries.

Article Details

Volume / Issue Vol. 37, Issue 46
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

P

Pan He

College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education

N

Neubi Francisco Xavier

School of Chemistry and Chemical Engineering Faculty of Engineering and Physical Sciences University of Surrey Guildford GU2 7XH UK

M

Matthias Johannes Golomb

School of Chemistry and Chemical Engineering Faculty of Engineering and Physical Sciences University of Surrey Guildford GU2 7XH UK

Y

Yupei Han

Department of Chemistry University College London London WC1H 0AJ UK

Y

Yuheng Du

School of Chemistry and Chemical Engineering Faculty of Engineering and Physical Sciences University of Surrey Guildford GU2 7XH UK

Q

Qiong Cai

School of Chemistry and Chemical Engineering

Y

Yang Xu