Tran Hai Linh, Darmanto Win, Doong Ruey-An
Department of Biomedical Engineering and Environmental Sciences, National Tsing Hua University, 101, Sec. 2, Kuang Fu Road, Hsinchu 30013, Taiwan.
Department of Biology, Faculty of Science and Technology, Airlangga University, Surabaya 60115, Indonesia.
Nanomaterials (Basel). 2020 Sep 20;10(9):1883. doi: 10.3390/nano10091883.
Herein, the boron and nitrogen co-doped 0-dimensional graphene quantum dots (B,N-GQDs) with high quantum yield (QY) were synthesized via microwave-assisted hydrothermal method at 170 °C for 20 min using fresh passion fruit juice and boric acid as the starting materials. The 3-6 layers of B,N-GQDs with mean particle size of 9 ± 1 nm were then used for ultra-sensitive and selective detection of tetracycline in aqueous and biological media. The hybridization of boron and nitrogen atoms into the GQD structures increases the intensity of electronegative, resulting in the enhancement of QY to 50 ± 1%. The B,N-GQDs show their excellent analytical performance on tetracycline determination after 2 min of reaction under an optimal condition at pH 5. The linear range of 0.04-70 µM and with limits of detection (LOD) of 1 nM in phosphate buffer saline (PBS), 1.9 nM in urine and 2.2 nM in human serum are obtained. Moreover, the high selectivity of tetracycline by B,N-GQDs over the other 23 interferences is observed. The π-π interaction and electron donor-acceptor principle play pivotal roles in enhancing the ultra-sensitivity and selectivity of B,N-GQDs toward TC detection. Moreover, the B, N-GQD based paper nanosensor exhibits an excellent analytical performance on visual detection of 0.1-30 µM TC in human serum. Results of this study clearly indicate the feasibility of synthesis of B,N-GQDs derived from passion fruit juice for ultrasensitive tetracycline detection, which can open an avenue to use natural products for the preparation of environmentally benign and biocompatible carbon nanomaterials for highly sensitive detection of drugs, antibiotics, organic compounds and biomarkers.
在此,以新鲜百香果果汁和硼酸为原料,通过微波辅助水热法在170℃下反应20分钟,合成了具有高量子产率(QY)的硼氮共掺杂零维石墨烯量子点(B,N-GQDs)。然后将平均粒径为9±1nm的3-6层B,N-GQDs用于水相和生物介质中四环素的超灵敏和选择性检测。硼和氮原子杂化进入GQD结构增加了电负性强度,使量子产率提高到50±1%。在pH 5的最佳条件下反应2分钟后,B,N-GQDs在四环素测定中表现出优异的分析性能。在磷酸盐缓冲盐水(PBS)中的线性范围为0.04-70μM,检测限(LOD)为1 nM,在尿液中为1.9 nM,在人血清中为2.2 nM。此外,观察到B,N-GQDs对四环素的选择性高于其他23种干扰物。π-π相互作用和电子供体-受体原理在增强B,N-GQDs对四环素检测的超灵敏性和选择性方面起关键作用。此外,基于B,N-GQD的纸质纳米传感器在人血清中0.1-30μM四环素的视觉检测中表现出优异的分析性能。本研究结果清楚地表明了从百香果果汁合成B,N-GQDs用于超灵敏四环素检测的可行性,这可为利用天然产物制备环境友好且生物相容的碳纳米材料用于高灵敏检测药物、抗生素、有机化合物和生物标志物开辟一条途径。