PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 19, 2026Angewandte Chemie International Edition0 citations

Nanoconfinement Enabled High‐Efficiency and Long‐Lifetime Multicolor Afterglow Hydrogels for Advanced Spatiotemporal Encryption and Pathogen Eradication

View Full Paper
SZShuman ZhangXLXiaoye LiXLXiaolong Liu

Key Points

  • To develop multicolor afterglow hydrogels with efficient exciton utilization, long lifetimes, and mechanical strength for applications in encryption and pathogen treatment.
  • Engineered nanoconfinement to embed a supramolecular framework in hydrogels.
  • Characterized afterglow emissions and lifetimes via spectroscopic methods.
  • Assessed mechanical properties, including compressive strength and strain resilience.
  • Evaluated antibacterial efficacy against pathogens in wound healing scenarios.
  • Hydrogels exhibited tunable afterglow emissions from deep blue to orange-red.
  • Achieved lifetimes of up to 2535 ms and quantum yields exceeding 29.4%.
  • Demonstrated compressive strength of 7.7 MPa and fracture strain near 1400%.
  • Showed over 99.9% antibacterial efficacy, enhancing wound healing.

Abstract

Multicolor organic afterglow hydrogels that simultaneously possess efficient exciton harvesting, ultralong lifetimes and large deformations are still rare. Here, a nano-restriction engineered strategy that embeds a rigid and chromatically diverse hydrogen bond supramolecular framework into hydrogel networks is presented. The confined microenvironment of the supramolecular framework suppresses non-radiative quenching to prolong triplet lifetimes and acts as stress-dissipating nodes to reinforce the polymer matrix. The synthesized hydrogels exhibit tunable afterglow emissions from deep blue to orange-red, lifetimes up to 2535 ms, and quantum yields above 29.4%, while retaining a compressive strength of 7.7 MPa and fracture strain near 1400%, with excellent stability under repeated cycling. Programmable color and decay dynamics of afterglow hydrogels enable spatiotemporally resolved encryption. Moreover, the long-lived triplet excitons efficiently sensitize singlet oxygen, delivering >99.9% antibacterial efficacy to accelerate infected wound healing. This approach provides a general route to develop multifunctional afterglow soft materials that couple high exciton utilization and ultralong lifetime with mechanical robustness.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69e4739a010ef96374d8f515https://doi.org/10.1002/anie.3224418
Ask AI
Helpful
Bookmark
Share
View Full Paper