Key Laboratory of Interfacial Reaction & Sensing Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, P. R. China.
ACS Appl Mater Interfaces. 2020 Apr 8;12(14):16662-16669. doi: 10.1021/acsami.0c04010. Epub 2020 Mar 25.
This study proposes a competitive photoelectrochemical (PEC) immunosensor for detecting diethylstilbestrol (DES). The PEC sensing platform uses a zinc and molybdenum codoped BiVO nanoarray ((Zn,Mo):BiVO) as the photoactive matrix and manganese hexacyanoferrate hydrate loading silicon dioxide layer composite nanocubes (MHCF@SiO NCs) as the signal quencher. The (Zn,Mo):BiVO nanoarray demonstrated brilliant PEC behavior, by virtue of the local electric field formed by the codoped Zn and Mo. This doping accelerated the electron transfer and improved the photoelectric conversion efficiency in BiVO nanoarray under visible light. Furthermore, the nanoarray structure with its large surface area provided abundant binding sites for the immune response. As the MHCF@SiO NCs-anti-DES competitively bonded with either free DES or bovine serum albumin conjugated DES (BSA-DES), hydrogen peroxide (HO) as electron donor was competitively consumed and meanwhile steric resistance blocked electrons transfer. For the above reasons, the photocurrent signal was reduced. Thus, the standard sample free DES was accurately detected, and the fabricated PEC immunosensor displayed an outstanding photocurrent response from 0.1 pg/mL to 50 ng/mL with a detection limit of 0.05 pg/mL. Simultaneously, the acceptable stability, selectivity, and reproducibility of the designed dual-competitive sensing platform suggest its applicability to small molecule detection.
本研究提出了一种竞争性光电化学(PEC)免疫传感器,用于检测己烯雌酚(DES)。PEC 传感平台使用锌和钼共掺杂的 BiVO 纳米阵列((Zn,Mo):BiVO)作为光活性基质,负载硅 dioxide 层复合纳米立方体的锰六氰合铁酸盐(MHCF@SiO2 NCs)作为信号猝灭剂。(Zn,Mo):BiVO 纳米阵列表现出优异的 PEC 行为,这得益于共掺杂的 Zn 和 Mo 形成的局部电场。这种掺杂加速了电子转移,提高了 BiVO 纳米阵列在可见光下的光电转换效率。此外,纳米阵列结构具有较大的表面积,为免疫反应提供了丰富的结合位点。由于 MHCF@SiO2 NCs-anti-DES 与游离 DES 或牛血清白蛋白共轭 DES(BSA-DES)竞争结合,作为电子供体的过氧化氢(HO)被竞争消耗,同时空间位阻阻止了电子转移。由于上述原因,光电流信号降低。因此,可以准确检测到标准样品游离 DES,所构建的 PEC 免疫传感器显示出从 0.1 pg/mL 到 50 ng/mL 的出色光电流响应,检测限为 0.05 pg/mL。同时,所设计的双竞争传感平台具有可接受的稳定性、选择性和重现性,表明其适用于小分子检测。