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MoS2 QDs co-catalytic Fenton reaction for highly sensitive photoluminescence sensing of H2O2 and glucose

机译:MoS2 QDs助催化Fenton反应用于H2O2和葡萄糖的高灵敏光致发光传感

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Photoluminescence probes based on a conventional Fenton system show unsatisfactory sensitivity due to low H2O2 decomposition efficiency. Herein, we report that molybdenum disulfide quantum dots (MoS2 QDs) show excellent co-catalytic activity for Fenton reactions due to the Mo4+ active sites on their surfaces facilitating Fe(III)/Fe(II) cycle reactions and high H2O2 decomposition efficiency. The MoS2 QDs were prepared by a simple hydrothermal method, and the obtained MoS2 QDs showed blue fluorescence with a high quantum yield of 13.4%, storage stability, and excellent water-solubility. By using bifunctional MoS2 QDs acting as both the fluorescent probe and the Fenton catalyst, a MoS2 QDs co-catalytic Fenton sensor system was proposed for ultrasensitive and selective fluorescence sensing of H2O2 with a linear range from 0.01 to 20 μM and a detection limit of 5 nM (S/N = 3). When coupled with glucose oxidase, glucose can be detected in the range of 0.01–30 μM with a detection limit of 7 nM. Moreover, we successfully demonstrated the potential application of the proposed system for glucose sensing in actual biological samples. The novel strategy proposed in this work may open a new window of interest in an unconventional application of MoS2 QDs-Fenton sensor platform for environmental and biological applications.
机译:基于常规Fenton系统的光致发光探针由于H2O2分解效率低而显示出不令人满意的灵敏度。在本文中,我们报道二硫化钼量子点(MoS2 QDs)对Fenton反应显示出优异的共催化活性,这是由于其表面上的Mo4 +活性位促进了Fe(III)/ Fe(II)循环反应和高H2O2分解效率。通过简单的水热法制备MoS2 QD,并且所获得的MoS2 QD显示出蓝色荧光,具有13.4%的高量子产率,储存稳定性和优异的水溶性。通过使用双功能MoS2 QDs作为荧光探针和Fenton催化剂,提出了MoS2 QDs助催化Fenton传感器系统,用于H2O2的超灵敏和选择性荧光传感,线性范围为0.01至20μM,检测极限为5 nM(S / N = 3)。与葡萄糖氧化酶结合使用时,可以检测到0.01–30μM范围内的葡萄糖,检测限为7 nM。此外,我们成功地证明了所提出的系统在实际生物样品中进行葡萄糖传感的潜在应用。这项工作中提出的新颖策略可能会为MoS2 QDs-Fenton传感器平台在环境和生物应用中的非常规应用打开一个新的兴趣窗口。

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