电化学发光
光电子学
化学
阳极
制作
钒酸铋
电极
光子上转换
半导体
纳米技术
信号(编程语言)
光子
吸收(声学)
激发
铋
光电化学
光电导性
作者
Xiaodan Gou,Changlin Zhou,Jun‐Jie Zhu,Gabriel Loget,Nešo Šojić
标识
DOI:10.1021/acs.analchem.5c03936
摘要
Electrochemiluminescence (ECL) is a powerful analytical technique. However, the necessity of an external power supply limits its use for portable sensing devices. Herein, we report a new sensing scheme based on an all-optical ECL (AO-ECL), which addresses this issue by emitting light without external electrical devices but through light excitation (λexc). In AO-ECL, the photovoltage generated by the semiconductor simultaneously drives the anodic ECL reaction (producing photons at λAO-ECL) and a cathodic charge transfer. While this approach significantly reduces the complexity of ECL instrumentation, current materials for such systems often suffer from relatively complex fabrication methods and all existing AO-ECL systems are upconversion systems (e.g., λexc > λAO-ECL). Here, we report for the first time an AO-ECL downconversion process (e.g., λexc < λAO-ECL) based on a bismuth vanadate (BiVO4) electrode with the model luminol-H2O2 system. Because BiVO4 has a wide absorption below 500 nm, the ECL emission spectrum further red-shifts to 510 nm. The strong responsiveness toward H2O2 of the BiVO4 AO-ECL system enables a significant shift on ECL onset potential from +0.3 V to -0.3 V (vs Ag/AgCl). A nearly 2.6-fold enhancement in ECL intensity was achieved at 0.4 V and the distinct ECL signal is observed even without applied bias. Moreover, the platform enabled cadmium ion (Cd2+) detection, with the AO-ECL intensity rising 2.2-fold. The simplicity of BiVO4 electrode fabrication combined with its cost-effectiveness positions this downconversion AO-ECL system as a potential candidate for the development of portable bioanalytical sensors and wireless bioimaging applications.
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