Long‐Lived Luminescence Over an Ultra‐Broad Temperature Range via Sequential Exciplex and Chemiluminescence Pathways

H Haozhi Wang (State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules, Zhangjiang Institute for Advanced Study and National Center for Translational Medicine) W Wanqi Mo (State Key Laboratory of Optoelectronic Materials and Technologies Key Laboratory for Polymeric Composite and Functional Materials of Ministry of Education, School of Chemistry Sun Yat‐sen University Guangzhou China) Z Zi Huang J Jinqing Chen (State Key Laboratory of Optoelectronic Materials and Technologies Key Laboratory for Polymeric Composite and Functional Materials of Ministry of Education, School of Chemistry Sun Yat‐sen University Guangzhou China) W Wei Hong G Guangtao Li (State Key Laboratory of Agricultural and Forestry Biosecurity, College of Plant Protection, Nanjing Agricultural University)

Abstract

ABSTRACT Persistent luminescent polymers have recently attracted significant research interest due to their tunable afterglow properties and flexible molecular design. However, these systems typically fail to exhibit long‐lived luminescence at elevated temperatures, primarily due to the rapid non‐radiative deactivation of triplet excitons and accelerated charge recombination. Herein, we report a relay strategy utilizing exciplexes and chemiluminescence that enables ultralong persistent luminescence across a broad temperature range (from 255 to 573 K). This can be facilely achieved by doping a dihydroacridine derivative into a polyethylene terephthalate matrix. The resulting flexible film exhibits a long exciplex emission (detectable after 32 h at room temperature), with a chemiluminescence that intensifies from 360 to 573 K and persists for over a month at 400 K. While these two luminescence modes exhibit opposite dependencies on temperature and oxygen, they share the same fundamental structural basis for achieving high performance: the design incorporating multiple isopropylidene bridges. Consequently, a switch between the two mechanisms occurs around 360 K, resulting in color‐tunable, ultra‐long persistent luminescence over a remarkably wide temperature range. This combination of properties paves the way for developing advanced optical materials for sensing and secure information technologies capable of operating in extreme environments.

Article Details

Volume / Issue Vol. 65, Issue 22
Published May 25, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

H

Haozhi Wang

State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules, Zhangjiang Institute for Advanced Study and National Center for Translational Medicine

W

Wanqi Mo

State Key Laboratory of Optoelectronic Materials and Technologies Key Laboratory for Polymeric Composite and Functional Materials of Ministry of Education, School of Chemistry Sun Yat‐sen University Guangzhou China

Z

Zi Huang

J

Jinqing Chen

State Key Laboratory of Optoelectronic Materials and Technologies Key Laboratory for Polymeric Composite and Functional Materials of Ministry of Education, School of Chemistry Sun Yat‐sen University Guangzhou China

W

Wei Hong

G

Guangtao Li

State Key Laboratory of Agricultural and Forestry Biosecurity, College of Plant Protection, Nanjing Agricultural University