S-Cu-FC/CuS modified GO carboxymethyl cellulose hydrogel for enhanced photocatalytic sterilization through homo-heterojunction interface accelerated charge transfer

Research output: Journal Publications and Reviews (RGC: 21, 22, 62)21_Publication in refereed journalpeer-review

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Author(s)

  • Bo Huang
  • Wei Guan
  • Chaofeng Wang
  • Shuilin Wu
  • Zhenduo Cui
  • Yufeng Zheng
  • Zhaoyang Li
  • Shengli Zhu
  • Hui Jiang
  • Xiangmei Liu

Detail(s)

Original languageEnglish
Pages (from-to)3589-3602
Journal / PublicationBiomaterials Science
Volume11
Issue number10
Online published31 Mar 2023
Publication statusPublished - 21 May 2023

Abstract

Charge transfer and separation play a critical role in the photocatalytic efficiency of photoresponsive materials and their subsequent applications. Herein, for the first time, we constructed a homo-heterostructured S-Cu-FC/CuS modified carboxymethyl cellulose (CMC) hydrogel doped with graphene oxide (GO) (S-Cu-FC/Cun situS/GO@CMC) through an in situ ionic complexation reaction, which exhibited enhanced photocatalytic performance under 808 nm near-infrared (NIR) light irradiation. On the one hand, photo-excited charges can rapidly transfer across the homo-heterojunction interface with copper atoms in S-Cu-FC/CuS as both donors and acceptors. On the other hand, the interface between GO and S-Cu-FC/CuS also favors the fast transfer of photogenerated charges. Hence, with the assistance of a photothermal effect, the enhanced photocatalytic performance of S-Cu-FC/CuS/GO endowed the hydrogel with robust sterilization ability for killing 99.5% S. aureus and 100.0% E. coli under 10 min NIR light irradiation. An in vivo test disclosed that this hydrogel could also accelerate the healing of bacteria-infected wounds. © 2023 The Royal Society of Chemistry.

Citation Format(s)

S-Cu-FC/CuS modified GO carboxymethyl cellulose hydrogel for enhanced photocatalytic sterilization through homo-heterojunction interface accelerated charge transfer. / Huang, Bo; Guan, Wei; Wang, Chaofeng et al.

In: Biomaterials Science, Vol. 11, No. 10, 21.05.2023, p. 3589-3602.

Research output: Journal Publications and Reviews (RGC: 21, 22, 62)21_Publication in refereed journalpeer-review