Polaron engineering promotes NIR-II absorption of carbon quantum dots for bioimaging and cancer therapy

Author:

Zhang Tesen1ORCID,Wang Bingzhe1ORCID,Cheng Quansheng1ORCID,Wang Qingcheng1,Zhou Qingqing2,Li Lingyun1ORCID,Qu Songnan1ORCID,Sun Handong1ORCID,Deng Chuxia23ORCID,Tang Zikang13ORCID

Affiliation:

1. Institute of Applied Physics and Materials Engineering, University of Macau, Macau SAR, China.

2. Faculty of Health Sciences, University of Macau, Macau SAR, China.

3. MOE Frontier Science Center for Precision Oncology, Cancer Center, Faculty of Health Sciences, University of Macau, Macau SAR, China.

Abstract

Recent years have witnessed a surge of interest in tuning the optical properties of organic semiconductors for diverse applications. However, achieving control over the optical bandgap in the second near-infrared (NIR-II) window has remained a major challenge. To address this, here we report a polaron engineering strategy that introduces diverse defects into carbon quantum dots (CQDs). These defects induce lattice distortions resulting in the formation of polarons, which can absorb the near-field scattered light. Furthermore, the formed polarons in N-related vacancies can generate thermal energy through the coupling of lattice vibrations, while the portion associated with O-related defects can return to the ground state in the form of NIR-II fluorescence. On the basis of this optical absorption model, these CQDs have been successfully applied to NIR-II fluorescence imaging and photothermal therapy. This discovery could open a promising route for the polarons of organic semiconductor materials as NIR-II absorbers in nanomedical applications.

Publisher

American Association for the Advancement of Science (AAAS)

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