Hydrogen-bonded silicene nanosheets of engineered bandgap and selective degradability for photodynamic therapy

  • Deliang Xu
  • , Han Lin*
  • , Wujie Qiu
  • , Min Ge
  • , Zhixin Chen
  • , Chenyao Wu
  • , Yanling You
  • , Xiangyu Lu
  • , Chenyang Wei
  • , Jianjun Liu
  • , Xiang Guo*
  • , Jianlin Shi*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

37 Scopus citations

Abstract

Silicon, a highly biocompatible and ubiquitous chemical element in living systems, exhibits great potentials in biomedical applications. However, the silicon-based nanomaterials such as silica and porous silicon have been largely limited to only serving as carriers for delivery systems, due to the lack of intrinsic functionalities of silicon. This work presents the facile construction of a two-dimensional (2D) hydrogen-bonded silicene (H-silicene) nanosystem which is highlighted with tunable bandgap and selective degradability for tumor-specific photodynamic therapy facilely by surface covalent modification of hydrogen atoms. Briefly, the H-silicene nanosheet material is selectively degradable in normal neutral tissues but rather stable in the mildly acidic tumor microenvironment (TME) for achieving efficient photodynamic therapy (PDT). Such a 2D hydrogen-bonded silicene nanosystem featuring the tunable bandgap and tumor-selective degradability provides a new paradigm for the application of multi-functional two-dimensional silicon-based biomaterials towards the diagnosis and treatments of cancer and other diseases.

Original languageEnglish
Article number121172
JournalBiomaterials
Volume278
DOIs
StatePublished - Nov 2021
Externally publishedYes

Keywords

  • Bandgap engineering
  • Degradability
  • Hydrogenation
  • Photodynamic therapy
  • Silicene

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