Hour‐Level and Air‐Stable Organic Long‐Persistent Luminescence from Organic–Inorganic Hybrid Materials

L Linhao Guan (Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou 350007 China) Q Qiuqin Huang (College of Environmental and Biological Engineering Fujian Provincial Key Laboratory of Ecology‐Toxicological Effects & Control for Emerging Contaminants Key Laboratory of Ecological Environment and Information Atlas Putian University Putian 351100 China) R Rujun Yang S Suhua Jiang Y Yixi Zhuang P Peiyuan Wang Y Yong Gao R Rong‐Jun Xie (College of Materials Xiamen University Xiamen 361005 China) Q Qidan Ling (Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou 350007 China) Z Zhenghuan Lin (College of Chemistry and Materials Science Fujian Normal University Fuzhou Fujian China)

Abstract

Abstract Organic long‐persistent luminescence (OLPL) materials show important application prospects in bioimaging due to their low biotoxicity and the ability to eliminate the interference of background fluorescence. However, OLPL materials suffer from poor environmental stability and short afterglow times. Herein, by introducing the phosphorescent guest 2, 3‐naphthalimide (NAI) into the B 2 O 3 (BO) matrix using a solvent‐free method in an air atmosphere, an organic–inorganic hybrid material NAI/BO is obtained, exhibiting OLPL lasting for more than 20 h, visible to the naked eye for up to 180 min. Photoluminescence and thermoluminescence spectra reveal that the OLPL originates from pure phosphorescence of NAI, and is induced by inorganic defects generated by oxygen vacancies in BO. The NAI electrons in the excited state can be captured by the defect, then detrapped through the thermal activation process, and eventually returned to the triplet state of NAI, thereby achieving OLPL emission. NAI/BO is successfully applied in vivo imaging stimulated in vitro. In addition, the universality of this strategy is verified by changing the phosphorescent guest molecules, enabling the regulation of OLPL from green to orange–red light. These results provide an important foundation for the design and development of stable OLPL materials and the practical applications in biological imaging.

Article Details

Volume / Issue Vol. 37, Issue 32
Published August 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

L

Linhao Guan

Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou 350007 China

Q

Qiuqin Huang

College of Environmental and Biological Engineering Fujian Provincial Key Laboratory of Ecology‐Toxicological Effects & Control for Emerging Contaminants Key Laboratory of Ecological Environment and Information Atlas Putian University Putian 351100 China

R

Rujun Yang

S

Suhua Jiang

Y

Yixi Zhuang

P

Peiyuan Wang

Y

Yong Gao

R

Rong‐Jun Xie

College of Materials Xiamen University Xiamen 361005 China

Q

Qidan Ling

Fujian Key Laboratory of Polymer Materials College of Chemistry and Materials Science Fujian Normal University Fuzhou 350007 China

Z

Zhenghuan Lin

College of Chemistry and Materials Science Fujian Normal University Fuzhou Fujian China