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Updated: Sep 5, 2026

A Bright NIR-II Fluorescence Probe for Vascular and Tumor Imaging
Published on: March 17, 2023
Facilitating J-Aggregate Formation by Lowering Activation Energy to Achieve Ultrahigh Brightness for NIR-II
Jie Li1,2, Hui-Hui Li1, Lei Dong1
1Key Laboratory of Radiopharmaceuticals, Ministry of Education, College of Chemistry, Beijing Normal University, Beijing100875, P. R. China.
Abstract:
Organic fluorophores operating in the second near-infrared window (NIR-II, 900-1700 nm) are plagued by low quantum yields (QYs) and diminished brightness in aqueous media. To address this challenge, we proposed a strategy of regulating the activation energy for aggregates transformation to achieve high-brightness NIR-II J-aggregates. Three aza-boron-dipyrromethene (aza-BODIPY) with heterocyclic substituents were synthesized. Among them compound ABS with substituents of dibenzothiophene exhibited the strongest J-aggregation propensity, as evidenced by aggregation kinetics studies. The self-assembly properties in water were modulated by grafting hydrophilic and hydrophobic chains onto the ABS core. This molecular engineering strategy promoted exciton delocalization and accelerated radiative decay (kr = 0.191 ns-1) for NIR-II J-aggregates of ABS-2 in water, achieving a record-high absolute quantum yield of 10.11%. Coupled with a molar extinction coefficient of 1.6 × 105 M-1·cm-1, the ABS-2 J-aggregates demonstrated ultrahigh brightness (B = 1.6 × 104 M-1·cm-1), surpassing most aqueous NIR-II emitters. Leveraging these photophysical merits, ABS-2 J-aggregates enabled NIR-II fluorescence imaging of blood vessels and also allowed NIR-II fluorescence and photoacoustic imaging of tumors in mice, showcasing its dual-modal diagnostic potential. We anticipate that the proposed strategy of regulating the activation energy for aggregates transformation may inspire further research for design of NIR-II fluorophores with high quantum yield and brightness, to improve the spatial resolution and tissue penetration depth of in vivo fluorescence imaging.
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