School of Biotechnology, Jiangsu University of Science and Technology, Zhenjiang, 212018, People's Republic of China.
Shandong Key Laboratory of Biochemical Analysis, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, People's Republic of China.
Mikrochim Acta. 2019 Apr 13;186(5):284. doi: 10.1007/s00604-019-3411-z.
Photocathodic methods in photoelectrochemical (PEC) analysis are based on the use of functional photocathodes. Heterojunction cathodes consisting of different kinds of semiconductors are being considered as favorite schemes when compared to the single-component ones. A semiconductor heterojunction between CuBiO (CBO) and other semiconductors has not been exploited in PEC assays so far. Herein, CBO nanospheres were initially electrochemically deposited on a fluorine-doped tin oxide (FTO) conductive glass and then coupled to chemically deposited AgI nanoparticles to obtain an electrode of type AgI/CBO/FTO. It was applied as a cathode in the PEC detection of L-cysteine as a model analyte. The sensor can selectively detect L-cysteine, and it is assumed that this is due to the selective interaction between the L-cysteine and both copper and silver via the formation of Cu-S and Ag-S bonds. The photocurrent of the electrode increases linearly with the logarithm of the cysteine concentration in the range from 0.1 and 50 μM, and the detection limit is 0.1 μM. Graphical abstract Schematic presentation of the preparation of an AgI/CuBiO (AgI/CBO) heterojunction on a fluorine-doped tin oxide (FTO) electrode and its application to the cathodic photoelectrochemical detection of L-cysteine.
光电化学(PEC)分析中的光电阴极方法基于功能光电阴极的使用。与单一组分相比,由不同半导体组成的异质结阴极被认为是首选方案。到目前为止,CuBiO(CBO)与其他半导体之间的半导体异质结尚未在 PEC 分析中得到利用。在此,首先在掺氟氧化锡(FTO)导电玻璃上电化学沉积 CBO 纳米球,然后与化学沉积的 AgI 纳米颗粒耦合,得到 AgI/CBO/FTO 型电极。它被用作检测 L-半胱氨酸作为模型分析物的 PEC 检测中的阴极。该传感器可以选择性地检测 L-半胱氨酸,据推测,这是由于 L-半胱氨酸与铜和银之间通过形成 Cu-S 和 Ag-S 键进行选择性相互作用。在 0.1 至 50 μM 的范围内,电极的光电流与半胱氨酸浓度的对数呈线性关系,检测限为 0.1 μM。