Unlocking the NIR‐II AIEgen for High Brightness through Intramolecular Electrostatic Locking

Author:

Wang Xinyuan12ORCID,Yang Xueqin2ORCID,Jiang Guanyu3ORCID,Hu Zhubin3,Liao Tao4,Wang Guoxin4,Zhang Xun1ORCID,He Xinyuan2,Zhang Jianyu2,Zhang Jianquan5ORCID,Cao Wuke1,Zhang Kaizhen1,Lam Jacky W. Y.2,Sun Jianwei2ORCID,Sun Haitao36ORCID,Liang Yongye1ORCID,Tang Ben Zhong25ORCID

Affiliation:

1. Department of Materials Science and Engineering, Shenzhen Key Laboratory of Printed Organic Electronic Southern University of Science and Technology Shenzhen 518055 China

2. Department of Chemistry, Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction, Division of Life Science, and State Key Laboratory of Molecular Neuroscience The Hong Kong University of Science and Technology, Kowloon Hong Kong 999077 China

3. State Key Laboratory of Precision Spectroscopy, School of Physics and Electronic Science East China Normal University Shanghai 200241 China

4. WWHS Biotech. Inc. Shenzhen 518122 China

5. School of Science and Engineering, Shenzhen Institute of Aggregate Science and Technology The Chinese University of Hong Kong (CUHK-Shenzhen) Shenzhen, Guangdong 518172 China

6. Collaborative Innovation Center of Extreme Optics Shanxi University, Taiyuan Shanxi 030006 China

Abstract

AbstractFluorescent imaging and biosensing in the near‐infrared‐II (NIR‐II) window holds great promise for non‐invasive, radiation‐free, and rapid‐response clinical diagnosis. However, it's still challenging to develop bright NIR‐II fluorophores. In this study, we report a new strategy to enhance the brightness of NIR‐II aggregation‐induced emission (AIE) fluorophores through intramolecular electrostatic locking. By introducing sulfur atoms into the side chains of the thiophene bridge in TSEH molecule, the molecular motion of the conjugated backbone can be locked through intramolecular interactions between the sulfur and nitrogen atoms. This leads to enhanced NIR‐II fluorescent emission of TSEH in both solution and aggregation states. Notably, the encapsulated nanoparticles (NPs) of TSEH show enhanced brightness, which is 2.6‐fold higher than TEH NPs with alkyl side chains. The in vivo experiments reveal the feasibility of TSEH NPs in vascular and tumor imaging with a high signal‐to‐background ratio and precise resection for tiny tumors. In addition, polystyrene nanospheres encapsulated with TSEH are utilized for antigen detection in lateral flow assays, showing a signal‐to‐noise ratio 1.9‐fold higher than the TEH counterpart in detecting low‐concentration antigens. This work highlights the potential for developing bright NIR‐II fluorophores through intramolecular electrostatic locking and their potential applications in clinical diagnosis and biomedical research.

Funder

National Natural Science Foundation of China

Shanghai Rising-Star Program

Publisher

Wiley

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