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Nitrogen-Sulfur-Doped Graphene Quantum Dots with Metal Ion-Resistance for Bioimaging

DOI:10.1021/acsanm.9b01309 期刊:ACS Applied Nano Materials 出版年份:2019 更新时间:2025-09-23 15:19:57
摘要: The development of ultra-stable and highly fluorescent heteroatoms-doped graphene quantum dots (GQDs) for bioimaging remains a challenge due to the fluorescence quenching caused by binding between the heteroatoms-based functional groups of the GQDs and common metal ions in biological systems. Here, we developed a facile hydrothermal method to prepare nitrogen-sulfur doped GQDs (NS-GQDs). The fluorescence signals of the NS-GQDs are highly stable in the existence of different metal ions. Two natural products, aspartic acid and cysteine, were utilized as the carbon precursors and heteroatomic (nitrogen and sulfur) sources. The produced NS-GQDs showed a quantum yield up to 19.3 ± 1.7 % with a maximum emission of 480 nm under the excitation of 400 nm. The elemental analysis, including X-ray photoelectron spectroscopy (XPS) and energy dispersive spectroscopy (EDS), and Fourier-transform infrared spectroscopy (FTIR), were performed to characterize the composition and surface groups of NS-GQDs. Additionally, the NS-GQDs not only showed notable photostability, but also thermostability and chemical stability. Moreover, the NS-GQDs demonstrated very low cellular cytotoxicity in vitro. Finally, the NS-GQDs were applied for fluorescence imaging of cells, which also exhibited excellent fluorescent stability even with treatment of copper ions. The results indicated that the developed novel NS-GQDs have a promising potential to be used as ultra-stable fluorescent agent in the field of bioimaging and biosensing.
作者: Zackery S. Schroer,Yingfen Wu,Yuqian Xing,Xu Wu,Xiao Liu,Xu Wang,Onnica G. Pino,Chuanmin Zhou,Colin Combs,Qinqin Pu,Min Wu,Julia Xiaojun Zhao,Jiao Chen
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To develop ultra-stable and highly fluorescent heteroatoms-doped graphene quantum dots (GQDs) for bioimaging that are resistant to fluorescence quenching caused by metal ions in biological systems.

The developed NS-GQDs exhibit excellent fluorescence properties, photostability, thermostability, and chemical stability, with low cellular cytotoxicity. They show extraordinary stability against metal ions, making them promising for bioimaging and biosensing applications.

The fluorescence intensity of NS-GQDs is sensitive to pH changes, decreasing by 64.4% when pH increased from 2.03 to 11.86. However, at physiological pH around 7, 71.8% of the highest fluorescence signal remained, which is still useful for bioimaging.

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