Tandem Restriction Between Spatial Confinement and Dipole Interaction for Suppressing Thermal Quenching of Phosphorescence from Cycloolefin Polymers

S Shiman Tang (School of Materials Science and Engineering Chongqing University of Technology Chongqing 400054 China) J Jiahong Hou (School of Materials Science and Engineering Chongqing University of Technology Chongqing 400054 China) K Kaiti Wang (School of Materials Science and Engineering Chongqing University of Technology No. 69 Hongguang Avenue, Banan District Chongqing 400054 P.R. China) J Jiahao Yu (Guangxi Key Lab for Relativistic Astrophysics, Center on Nanoenergy Research, School of Physical Science and Technology, Guangxi University 1 , Nanning, Guangxi 530004,) S Shunnan Jiang (School of Materials Science and Engineering Chongqing University of Technology Chongqing 400054 China) Y Yushuang Zhang L Lijie Yi (School of Materials Science and Engineering Chongqing University of Technology Chongqing 400054 China) L Lunjun Qu Y Yanli Zhao (School of Chemistry, Chemical Engineering and Biotechnology) C Chaolong Yang

Abstract

Abstract Construction of a rigid environment is a well‐developed strategy for suppressing non‐radiative deactivation of organic chromophores and generating long‐lived room‐temperature phosphorescence (RTP). However, it is challenging for the formed rigid networks to maintain their stability at elevated temperature. In this work, a series of ester‐rich cycloolefin polymers (COPs) are synthesized via controlled copolymerization procedure. The dipole interactions originated from ester groups show efficient suppressing effects on the non‐radiative deactivation of multi‐cyclic chromophores, achieving irradiation‐dependent and multi‐colored RTP. These COPs can also emit decent high‐temperature phosphorescence (HTP). The investigation about the phosphorescence thermal quenching reveals that the spatial confinement of the cyclic skeleton in COPs can suppress the dissociation of dipole interactions of ester. By further incorporating bulky adamantyl groups, a breakthrough in red, yellow, and green HTP from common multi‐cyclic chromophores is successfully achieved, even under hygrothermal exposure. Benefiting from the irradiation‐dependent RTP and HTP performance, the obtained COPs are successfully applied in imaging under hygrothermal exposure, temperature monitoring of chemical reactions, and hydrogen peroxide detection.

Article Details

Volume / Issue Vol. 38, Issue 3
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

S

Shiman Tang

School of Materials Science and Engineering Chongqing University of Technology Chongqing 400054 China

J

Jiahong Hou

School of Materials Science and Engineering Chongqing University of Technology Chongqing 400054 China

K

Kaiti Wang

School of Materials Science and Engineering Chongqing University of Technology No. 69 Hongguang Avenue, Banan District Chongqing 400054 P.R. China

J

Jiahao Yu

Guangxi Key Lab for Relativistic Astrophysics, Center on Nanoenergy Research, School of Physical Science and Technology, Guangxi University 1 , Nanning, Guangxi 530004,

S

Shunnan Jiang

School of Materials Science and Engineering Chongqing University of Technology Chongqing 400054 China

Y

Yushuang Zhang

L

Lijie Yi

School of Materials Science and Engineering Chongqing University of Technology Chongqing 400054 China

L

Lunjun Qu

Y

Yanli Zhao

School of Chemistry, Chemical Engineering and Biotechnology

C

Chaolong Yang