Orthogonal Self-Assembly of a Two-Step Fluorescence-Resonance Energy Transfer System with Improved Photosensitization Efficiency and Photooxidation Activity

  • Pei Pei Jia
  • , Lin Xu*
  • , Yi Xiong Hu
  • , Wei Jian Li
  • , Xu Qing Wang
  • , Qing Hui Ling
  • , Xueliang Shi
  • , Guang Qiang Yin
  • , Xiaopeng Li
  • , Haitao Sun
  • , Yanrong Jiang
  • , Hai Bo Yang*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

170 Scopus citations

Abstract

During the past few decades, fabrication of multistep fluorescence-resonance energy transfer (FRET) systems has become one of the most attractive topics within supramolecular chemistry, chemical biology, and materials science. However, it is challenging to efficiently prepare multistep FRET systems with precise control of the distances between locations and the numbers of fluorophores. Herein we present the successful fabrication of a two-step FRET system bearing specific numbers of anthracene, coumarin, and BODIPY moieties at precise distances and locations through an efficient and controllable orthogonal self-assembly approach based on metal-ligand coordination and host-guest interactions. Notably, the photosensitization efficiency and photooxidation activity of the two-step FRET system gradually increased with the number of energy transfer steps. For example, the two-step FRET system exhibited 1.5-fold higher 1O2 generation efficiency and 1.2-fold higher photooxidation activity than that of its corresponding one-step FRET system. This research not only provides the first successful example of the efficient preparation of multistep FRET systems through orthogonal self-assembly involving coordination and host-guest interactions but also pushes multistep FRET systems toward the application of photosensitized oxidation of a sulfur mustard simulant.

Original languageEnglish
Pages (from-to)399-408
Number of pages10
JournalJournal of the American Chemical Society
Volume143
Issue number1
DOIs
StatePublished - 13 Jan 2021

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