Synergistic effect of a bamboo-like Bi2S3 covered Sm2O3 nanocomposite (Bi2S3-Sm2O3) for enhanced alkaline OER

  • Tauseef Munawar
  • , Saman Fatima
  • , Khalid Mujasam Batoo
  • , Ambreen Bashir
  • , Faisal Mukhtar
  • , Sajjad Hussain
  • , Sumaira Manzoor
  • , Muhammad Naeem Ashiq
  • , Shoukat Alim Khan
  • , Muammer Koc
  • , Faisal Iqbal

Research output: Contribution to journalArticlepeer-review

11 Citations (Scopus)

Abstract

The availability of hydrogen energy from water splitting through the electrocatalytic route is strongly dependent on the efficiency, durability, and cost of the electrocatalysts. Herein, a novel Bi2S3-covered Sm2O3 (Bi2S3-Sm2O3) nanocomposite electrocatalyst was developed by a hydrothermal route for the oxygen evolution reaction (OER). The electrochemical properties were studied in 1.00 mol KOH solution after coating the target material on the stainless-steel substrate (SS). Physical analysis via XRD, FTIR, IV, TEM/EDX, and XPS revealed that the Bi2S3-Sm2O3 composite possesses metallic surface states, thereby displaying unconventional electron dynamics and purity of phases. The Bi2S3-Sm2O3 composite shows outstanding OER activity with a low overpotential of 197 mV and a Tafel slope of 74 mV dec(-1) at a 10 mA cm(-2) current density as compared to pure Bi2S3 and Sm2O3. Meanwhile, the composite catalyst retains high stability even after 100 h of the chronoamperometry test. Thus, this work unveils a new avenue for the speedy flow of electrons, which is attributed to the synergetic effect between Bi2S3 and Sm2O3, as well as enriched interfacial defects, which exhibit greater oxygen adsorption capability with improved electronic assemblies in the active interfacial region. In addition, the introduced porous structure in core-shell Bi2S3-Sm2O3 provides extraordinary electrical properties. Thus, this article offers a realistic framework for electrochemical energy generation.
Original languageEnglish
Pages (from-to)2678-2691
Number of pages14
JournalPhysical Chemistry Chemical Physics
Volume26
Issue number3
Early online dateJan 2024
DOIs
Publication statusPublished - 17 Jan 2024

Keywords

  • Electrocatalytic oxygen evolution
  • Efficient electrocatalyst
  • Hydroxide nanosheets
  • Energy-conversion
  • Sulfide

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