Bottom Deposition Enables Stable All‐Solid‐State Batteries with Ultrathin Lithium Metal Anode

Author:

Lee Sangyeop1,Cho Sungjin2,Choi Hyunbeen2,Kim Sungho2,Jeong Insu2,Lee Yubin2,Choi Taesun3,Bae Hongyeul4,Kim Jin Hong4,Park Soojin123ORCID

Affiliation:

1. Division of Advanced Materials Science Pohang University of Science and Technology (POSTECH) 77 Cheongam‐ro, Nam‐gu Pohang 37673 Republic of Korea

2. Department of Chemistry Pohang University of Science and Technology (POSTECH) 77 Cheongam‐ro, Nam‐gu Pohang 37673 Republic of Korea

3. Graduate Institute of Ferrous and Energy Materials Technology Pohang University of Science and Technology (POSTECH) 77 Cheongam‐ro, Nam‐gu Pohang 37673 Republic of Korea

4. Secondary Battery Materials Research Laboratory Research Institute of Industrial Science and Technology (RIST) 67 Cheongam‐ro, Nam‐gu Pohang 37673 Republic of Korea

Abstract

AbstractModern strides in energy storage underscore the significance of all‐solid‐state batteries (ASSBs) predicated on solid electrolytes and lithium (Li) metal anodes in response to the demand for safer batteries. Nonetheless, ASSBs are often beleaguered by non‐uniform Li deposition during cycling, leading to compromised cell performance from internal short circuits and hindered charge transfer. In this study, the concept of “bottom deposition” is introduced to stabilize metal deposition based on the lithiophilic current collector and a protective layer composed of a polymeric binder and carbon black. The bottom deposition, wherein Li plating ensues between the protective layer and the current collector, circumvents internal short circuits and facilitates uniform volumetric changes of Li. The prepared functional binder for the protective layer presents outstanding mechanical robustness and adhesive properties, which can withstand the volume expansion caused by metal growth. Furthermore, its excellent ion transfer properties promote uniform Li bottom deposition even under a current density of 6 mA·cm−2. Also, scanning electron microscopy analysis reveals a consistent plating/stripping morphology of Li after cycling. Consequently, the proposed system exhibits enhanced electrochemical performance when assessed within the ASSB framework, operating under a configuration marked by a high Li utilization rate reliant on an ultrathin Li.

Publisher

Wiley

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