Fused‐Ring Pyrrole‐Based Near‐Infrared Emissive Organic RTP Material for Persistent Afterglow Bioimaging

Author:

Zhao Yeyun1,Yang Jianhui2,Liang Chao3,Wang Zhongjie4,Zhang Yongfeng1,Li Gengchen1,Qu Jiamin1,Wang Xi1,Zhang Yahui5,Sun Peng6,Shi Jianbing1,Tong Bin1,Xie Hai‐Yan7,Cai Zhengxu1ORCID,Dong Yuping1

Affiliation:

1. Beijing Key Laboratory of Construction Tailorable Advanced Functional Materials and Green Applications School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 P. R. China

2. School of Materials Science and Engineering Luoyang Institute of Science and Technology Luoyang 471023 P. R. China

3. School of Life Science Beijing Institute of Technology Beijing 100081 P. R. China

4. School of Medical Technology Beijing Institute of Technology Beijing 100081 P. R. China

5. Department of Chemistry School of Science Xihua University Chengdu 610039 P. R. China

6. Advanced Research Institute of Multidisciplinary Sciences Beijing Institute of Technology Beijing 100081 P. R. China

7. State Key Laboratory of Natural and Biomimetic Drugs School of Pharmaceutical Sciences Chemical Biology Center Peking University Beijing 100191 P. R. China

Abstract

AbstractOrganic near‐infrared room temperature phosphorescence (RTP) materials offer remarkable advantages in bioimaging due to their characteristic time scales and background noise elimination. However, developing near‐infrared RTP materials for deep tissue imaging still faces challenges since the small band gap may increase the non‐radiative decay, resulting in weak emission and short phosphorescence lifetime. In this study, fused‐ring pyrrole‐based structures were employed as the guest molecules for the construction of long wavelength emissive RTP materials. Compared to the decrease of the singlet energy level, the triplet energy level showed a more effectively decrease with the increase of the conjugation of the substituent groups. Moreover, the sufficient conjugation of fused ring structures in the guest molecule suppresses the non‐radiative decay of triplet excitons. Therefore, a near‐infrared RTP material (764 nm) was achieved for deep penetration bioimaging. Tumor cell membrane is used to coat RTP nanoparticles (NPs) to avoid decreasing the RTP performance compared to traditional coating by amphiphilic surfactants. RTP NPs with tumor‐targeting properties show favorable phosphorescent properties, superior stability, and excellent biocompatibility. These NPs are applied for time‐resolved luminescence imaging to eliminate background interference with excellent tissue penetration. This study provides a practical solution to prepare long‐wavelength and long‐lifetime organic RTP materials and their applications in bioimaging.

Funder

Key Technologies Research and Development Program

Natural Science Foundation of Beijing Municipality

Publisher

Wiley

Subject

General Chemistry,Catalysis

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