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Nonconventional Luminescence of Hyperbranched Polysiloxanes for Film Fabrication and Bacterial Imaging

  • Yuqun Du
  • , Chenyu Zhang
  • , Zhikang Yang
  • , Jinye Wang
  • , Qiaoling Li
  • , Hongxia Yan
  • North University of China

Research output: Contribution to journalArticlepeer-review

Abstract

Nonconventional luminescent polymers devoid of extended π-conjugation have drawn considerable attention because of their potential applications and theoretical implications. Herein, hyperbranched polysiloxane with a C═C backbone (HPSi-1) exhibits enhanced and red-shifted emission compared to HPSi-2, bearing a C–C backbone, with a high absolute photoluminescence quantum yield (QY) of 11%. Notably, as HPSi-1 content increased, the excitation/emission wavelength of polyacrylamide (PAAm)/HPSi-1 films red-shifted from 320/390 to 400/466 nm, achieving a QY as high as 29.9%. These results indicate that the aggregation of polymer molecules within the matrix increases with increasing HPSi-1 content, thereby enhancing through-space interactions and restricting molecular motion, which significantly improves the fluorescence performance. The fluorescence of HPSi-1 is stable under various pH conditions and can be selectively quenched by Fe3+. Furthermore, HPSi-1 serves as an effective fluorescent probe for imaging Escherichia coli cells. This work provides a strategy to enhance the fluorescence performance of nonconventional luminescent polymers and broaden their application in bioimaging.

Original languageEnglish
Pages (from-to)13167-13177
Number of pages11
JournalACS Applied Polymer Materials
Volume8
Issue number15
DOIs
StatePublished - 14 Aug 2026

Keywords

  • aggregation
  • fluorescent film
  • hyperbranched polysiloxane
  • nonconventional luminescent polymers
  • through-space interactions

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