Na Storage in Sb2S3@C Composite: A Synergistic Capacity Contribution Mechanism with Wider Temperature Adaptability

Sundas Iqbal, Yue Ma, Bingqing Wei, Mustehsin Ali, Tingkai Zhao

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

The practical applications of metallic anodes are limited due to dendritic growth, propagation in an infinite volume during the plating process, and parasitic interfacial reactions between sodium (Na) and the electrolyte. Herein, we developed Sb2S3 microrods as a template to regulate the nucleation of metallic Na. Additionally, the propagation of the deposited metal could be spatially regulated via a “nanoconfinement effect”, that is, within the conformal hard carbon (C) layer of nanothickness. Moreover, we carefully studied the seed effect of the in situ-formed Na-Sb and Na-S alloys within the hard C sheath during the Na plating process. The symmetrical cells of the Sb2S3@C composite anode achieved dendrite-free cycling at 1 mA cm-2 for 1100 h at a high capacity loading of 1 mA h cm-2 and considerably mitigated a nucleation overpotential of 20 mV. Pairing a NaVPO4F (NVPF) cathode (4.6 mg cm-2) with an in situ presodiation Sb2S3@C composite (2*Na excess) prototype delivered a high energy density and a high power density of 173.75 W h kg-1 and 868.57 W kg-1, respectively. Therefore, this study provides tremendous possibilities for employing the proposed hybrid storage mechanism in low-cost and practical applications of high-energy-density Na metal batteries.

Original languageEnglish
Pages (from-to)16692-16701
Number of pages10
JournalACS Applied Materials and Interfaces
Volume15
Issue number13
DOIs
StatePublished - 5 Apr 2023

Keywords

  • alloying/dealloying
  • hybrid storage mechanism
  • Na deposition
  • plating/stripping
  • SbS@C microrods
  • sodium metal battery

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