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S-型异质结酞菁/TiO 光电化学传感器用于创新型谷胱甘肽检测。

S-scheme heterojunction phthalocyanine/TiO photoelectrochemical sensor for innovative glutathione detection.

机构信息

China Medical University, Shenyang, 110122, Liaoning, China.

Ministry of Education Key Laboratory for Analytical Science of Food Safety and Biology, Fujian Provincial Key Laboratory of Analysis and Detection for Food Safety, College of Chemistry, Fuzhou University, Fuzhou, 350108, Fujian, China.

出版信息

Mikrochim Acta. 2024 Jun 13;191(7):389. doi: 10.1007/s00604-024-06468-0.

Abstract

A novel photoelectrochemical sensor, employing an S-scheme heterojunction of phthalocyanine and TiO nanoparticles, has been developed to enable highly sensitive determination of glutathione. By integrating the favorable stability, environmental benignity, and electronic properties of the TiO matrix with the unique photoactivity of phthalocyanine species, the designed sensor presents a substantial linear dynamic range and a low detection limit for the quantification of glutathione. The sensitivity is attributed to efficient charge transfer and separation across the staggered heterojunction energy levels, which generates measurable photocurrent signals. Systematic variation of phthalocyanine content reveals an optimal composition that balances light harvesting capacity and electron-hole recombination rates. The incorporation of phosphotungstic acid (PTA) in sample preparation effectively minimizes interference from compounds like L-cysteine and others. Consequently, this leads to an improvement in accuracy through the reduction of impurity levels. Appreciable photocurrent enhancements are observed upon introduction of both oxidized and reduced glutathione at the optimized composite photoanode. Coupled with advantageous features of photoelectrochemical transduction such as simplicity, cost-effectiveness, and resistance to fouling, this sensor holds great promise for practical applications in complex biological media.

摘要

一种新型光电化学传感器,采用酞菁和 TiO 纳米粒子的 S 型异质结,已被开发用于实现对谷胱甘肽的高灵敏度测定。通过将 TiO 基体的良好稳定性、环境友好性和电子性质与酞菁物种的独特光活性相结合,设计的传感器在谷胱甘肽定量方面呈现出大的线性动态范围和低检测限。灵敏度归因于在交错异质结能级之间的有效电荷转移和分离,这产生了可测量的光电流信号。系统地改变酞菁的含量揭示了一种最佳的组成,平衡了光捕获能力和电子-空穴复合速率。在样品制备中加入磷钨酸 (PTA) 有效地最小化了像 L-半胱氨酸和其他化合物的干扰。因此,通过降低杂质水平,提高了准确性。在优化的复合光电阳极上引入氧化型和还原型谷胱甘肽时,观察到明显的光电流增强。结合光电化学转导的优点,如简单、经济高效和抗污染,该传感器在复杂生物介质中的实际应用中具有很大的应用前景。

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