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Chlorination <i>vs.</i> fluorination: a study of halogenated benzo[ <i>c</i> ][1,2,5]thiadiazole-based organic semiconducting dots for near-infrared cellular imaging

DOI:10.1039/D0NJ00700E 期刊:New Journal of Chemistry 出版年份:2020 更新时间:2025-09-23 15:19:57
摘要: Red/near-infrared organic dyes are becoming increasingly widespread in biological applications. However, designing these dyes with long-wavelength emission, large Stokes shifts, and high fluorescence quantum efficiency is still a very challenging task. In this work, five donor-acceptor (D-A) red/near-infrared fluorophores based on different chlorinated/fluorinated benzo[c][1,2,5]thiadiazole units are designed and synthesized. The photophysical, theoretical calculations, and electrochemical properties explored in this study have proved that the introducing of chlorine atoms will lead to a lower HOMO level, stronger steric hindrance, and a relative lower quantum yield in solutions. When the organic dots are fabricated, the chlorinated dots demonstrate much higher fluorescence quantum yield, larger Stokes shift, and better photostability than that of the fluorinated dots. After labeling A549 cells, all the chlorinated/fluorinated dots exhibit high red emission intensities. All these results indicated that the subtle change in the halogen atom of the benzo[c][1,2,5]thiadiazole unit is a unique method to tune the photophysical properties of those materials, which also provides good guidelines to design highly efficient red/near-infrared molecules for cellular imaging applications.
作者: Daize Mo,Li Lin,Pengjie Chao,Hanjian Lai,Qingwen Zhang,Leilei Tian,Feng He
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Investigating the effects of chlorination vs. fluorination on the photophysical properties of benzo[c][1,2,5]thiadiazole-based organic semiconducting dots for near-infrared cellular imaging.

The introduction of chlorine atoms leads to a lower HOMO level, stronger steric hindrance, and a relative lower quantum yield in solutions. However, chlorinated dots demonstrate higher fluorescence quantum yield, larger Stokes shift, and better photostability than fluorinated dots, making them promising for cellular imaging applications.

The study focuses on the comparison between chlorinated and fluorinated benzo[c][1,2,5]thiadiazole-based dots, potentially overlooking other halogenation effects. The application is limited to cellular imaging, and further in vivo studies are needed.

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