Clinical Translational Research Center of Aggregation-Induced Emission, School of Medicine, The Second Affiliated Hospital, School of Science and Engineering, Shenzhen Institute of Aggregate Science and Technology, The Chinese University of Hong Kong, Shenzhen (CUHK-Shenzhen), Guangdong 518172, People's Republic of China.
Laboratory of Molecular Imaging and Translational Medicine (MITM), Engineering Research Center of Molecular & Neuroimaging, Ministry of Education, School of Life Science and Technology, Xidian University, Xi'an 710126, People's Republic of China.
ACS Nano. 2024 Apr 2;18(13):9431-9442. doi: 10.1021/acsnano.3c11078. Epub 2024 Mar 20.
The simultaneous pursuit of accelerative radiative and restricted nonradiative decay is of tremendous significance to construct high-luminescence-efficiency fluorophores in the second near-infrared wavelength window (NIR-II), which is seriously hindered by the energy gap laws. Herein, a mash-up strategy of π-extension and deuteration is proposed to efficaciously ameliorate the knotty problem. By extending the π-conjugation of the aromatic fragment and introducing an isotope effect to the aggregation-induced emission luminogen (AIEgen), an improved oscillator strength (), coupled with suppressed deformation and high-frequency oscillation in the excited state, are successively implemented. In this case, a faster rate of radiative decay () and restricted nonradiative decay () are simultaneously achieved. Moreover, the preeminent emissive property of AIEgen in the molecular state could be commendably inherited by the aggregates. The corresponding NIR-II emissive AIEgen-based nanoparticles display high brightness, large Stokes shift, and superior photostability simultaneously, which can be applied for image-guided cancer and sentinel lymph node (SLN) surgery. This work thus provides a rational roadmap to improve the luminescence efficiency of NIR-II fluorophores for biomedical applications.
同时追求加速辐射和受限非辐射衰减对于构建第二近红外波长窗口(NIR-II)内高发光效率荧光团具有重要意义,但这受到能隙定律的严重阻碍。在此,提出了一种π-扩展和氘化的混合策略,以有效地改善这一难题。通过扩展芳香片段的π-共轭并将同位素效应引入聚集诱导发射发光体(AIEgen),可以依次实现改进的振子强度(),同时抑制激发态中的变形和高频振动。在这种情况下,可以同时实现更快的辐射衰减()和受限非辐射衰减()。此外,分子态中 AIEgen 的卓越发光性能可以很好地被聚集体继承。相应的基于 NIR-II 发光 AIEgen 的纳米粒子同时显示出高亮度、大斯托克斯位移和优异的光稳定性,可用于图像引导癌症和前哨淋巴结(SLN)手术。这项工作为提高用于生物医学应用的 NIR-II 荧光团的发光效率提供了一条合理的途径。