Crystal Facet-Engineered Indium Sulfide Ultrathin Nanosheets for Photocatalytic Hydrogen Evolution

Boye Zhou, Zhengdao Li, Jinshan Xu, Yubing Zheng, Yongcai Zhang, Yan Yuan, Yuxiang Yan, Jiahui Kou, Xin Zhou, Jun Du, Xinglong Wu, Qing Shen, Zhigang Zou, Yong Zhou

Research output: Contribution to journalArticlepeer-review

Abstract

Two types of ultrathin In2S3 nanosheets with thicknesses of 3-5 nm, terminated with (100) and (110) crystal facets, were successfully synthesized. The introduction of an excess sulfur precursor enables selective adsorption of released S2- ions onto the (100) surface, suppressing its growth and promoting the growth and exposure of the (110) crystal facets (denoted as IS-(100) and IS-(110), respectively). IS-(100) is of a narrower bandgap compared to IS-(110), enhancing its light absorption range. Water adsorption and dissociation were found to be more favorable on the IS-(100) surface, as indicated by the hydrogen reaction Gibbs free energy diagram. Furthermore, kinetic analysis demonstrates that IS-(100) has superior charge separation and transfer capabilities and reduced carrier recombination, relative to IS-(110), as evidenced by photoelectrochemical tests and photoluminescence measurements. In addition, IS-(100) has a more negative conduction band position than IS-(110). Consequently, IS-(100) exhibited a higher hydrogen evolution efficiency, achieving a value 1.67 times greater than that of IS-(110).

Original languageEnglish
Pages (from-to)12314-12321
Number of pages8
JournalACS Applied Nano Materials
Volume8
Issue number23
DOIs
StatePublished - 13 Jun 2025

Keywords

  • exposed facet
  • facet engineering
  • indium sulfide
  • nanosheet
  • photocatalytic hydrogen evolution

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