A Series of Hybrid Multifunctional Interfaces as Artificial SEI Layer for Realizing Dendrite Free, and Long‐Life Sodium Metal Anodes

Author:

Moorthy Megala1,Moorthy Brindha2,Ganesan Bala Krishnan1,Saha Aditi3,Yu Seungju4,Kim Do‐Hoon4,Hong Seungbum3,Park Sangho5,Kang Kisuk4,Thangavel Ranjith6ORCID,Lee Yun‐Sung1ORCID

Affiliation:

1. School of Chemical Engineering Chonnam National University Gwangju 61186 Republic of Korea

2. Department of Chemical Engineering Indian Institute of Technology Tirupati Tirupati 517619 India

3. Department of Materials Science and Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

4. Department of Materials Science and Engineering Seoul National University Seoul 08826 Republic of Korea

5. Department of Battery Engineering Dongshin University Dongshindae‐gil 34‐22, Jeollanam‐do Naju‐si 58245 Republic of Korea

6. School of Energy Science and Engineering Indian Institute of Technology Guwahati Guwahati 781039 India

Abstract

AbstractSodium metal (Na) anodes are considered the most promising anode for high‐energy‐density sodium batteries because of their high capacity and low electrochemical potential. However, Na metal anode undergoes uncontrolled Na dendrite growth, and unstable solid electrolyte interphase layer (SEI) formation during cycling, leading to poor coulombic efficiency, and shorter lifespan. Herein, a series of Na‐ion conductive alloy‐type protective interface (Na‐In, Na‐Bi, Na‐Zn, Na‐Sn) is studied as an artificial SEI layer to address the issues. The hybrid Na‐ion conducting SEI components over the Na‐alloy can facilitate uniform Na deposition by regulating Na‐ion flux with low overpotential. Furthermore, density functional study reveals that the lower surface energy of protective alloys relative to bare Na is the key factor for facilitating facile ion diffusion across the interface. Na metal with interface layer facilitates a highly reversible Na plating/stripping for ≈790 h, higher than pristine Na metal (100 h). The hybrid self‐regulating protective layers exhibit a high mechanical flexibility to promote dendrite free Na plating even at high current density (5 mA cm−2), high capacity (10 mAh cm−2), and good performance with Na3V2(PO4)3 cathode. The current study opens a new insight for designing dendrite Na metal anode for next generation energy storage devices.

Funder

National Research Foundation of Korea

Science and Engineering Research Board

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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