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Graphitic Carbon Nitride Nanosheets-Based Ratiometric Fluorescent Probe for Highly Sensitive Detection of H2O2 and Glucose

机译:基于石墨化氮化碳纳米片的比例荧光探针可高灵敏度检测H2O2和葡萄糖

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Graphitic carbon nitride (g-C3N4) nanosheets, an emerging graphene-like carbon-based nanomaterial with high fluorescence and large specific surface areas, hold great potential for biosensor applications. Current g-C3N4 nanosheets based fluorescent biosensors majorly rely on single fluorescent intensity reading through fluorescence quenching interactions between the nanosheets and metal ions. Here we report for the first time the development of a novel g-C3N4 nanosheets-based ratiometric fluorescence sensing strategy for highly sensitive detection of H2O2 and glucose. With o-phenylenediamine (OPD) oxidized by H2O2 in the presence of horseradish peroxidase (HRP), the oxidization product can assemble on the g-C(3)N4 nanosheets through hydrogen bonding and pi-pi stacking, which effectively quenches the fluorescence of g-C3N4 while delivering a new emission peak. The ratiometric signal variations enable robust and sensitive detection of H2O2. On the basis of the glucose converting into H2O2 through the catalysis of glucose oxidase, the g-C3N4-based ratiometric fluorescence sensing platform is also exploited for glucose assay. The developed strategy is demonstrated to give a detection limit of 50 nM for H2O2 and 0.4 mu M for glucose, at the same time, it has been successfully used for glucose levels detection in human serum. This strategy may provide a cost-efficient, robust, and high-throughput platform for detecting various species involving H2O2-generation reactions for biomedical applications.
机译:石墨碳氮化物(g-C3N4)纳米片是一种新兴的石墨烯状碳基纳米材料,具有高荧光和大比表面积,在生物传感器应用中具有巨大潜力。当前基于g-C3N4纳米片的荧光生物传感器主要依赖于通过纳米片与金属离子之间的荧光猝灭相互作用的单个荧光强度读数。在这里,我们首次报告了一种新型的基于g-C3N4纳米片的比例荧光传感策略,用于高灵敏度检测H2O2和葡萄糖。在辣根过氧化物酶(HRP)存在下,邻苯二胺(OPD)被H2O2氧化后,该氧化产物可以通过氢键和pi-pi堆积在gC(3)N4纳米片上组装,从而有效地淬灭了g- C3N4,同时达到新的排放峰值。比例信号变化实现了H2O2的鲁棒和灵敏检测。在葡萄糖通过葡萄糖氧化酶催化转化为H2O2的基础上,还开发了基于g-C3N4的比例荧光传感平台进行葡萄糖分析。事实证明,该开发的策略对H2O2的检测限为50 nM,对葡萄糖的检测极限为0.4μM,同时,它已成功用于人血清中的葡萄糖水平检测。该策略可以提供一种经济高效,强大且高通量的平台,用于检测涉及生物医学应用中涉及H2O2生成反应的各种物种。

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