Hao Qing, Shan Xiaonan, Lei Jianping, Zang Yang, Yang Qianhui, Ju Huangxian
State Key Laboratory of Analytical Chemistry for Life Science , School of Chemistry and Chemical Engineering , Nanjing University , Nanjing 210093 , P. R. China . Email:
Center for Bioelectronics and Biosensors , Biodesign Institute , Arizona State University , Tempe , Arizona 85287 , USA.
Chem Sci. 2016 Jan 1;7(1):774-780. doi: 10.1039/c5sc03336e. Epub 2015 Oct 16.
In this work, a wavelength-resolved ratiometric photoelectrochemical (WR-PEC) technique was investigated and employed to construct a new type of PEC sensor with good sensitivity and anti-interference ability. The WR-PEC hybrid photoelectrodes were stepwise assembled using semiconductor quantum dots (QDs) and photoactive dyes. Under continuous irradiation, the photocurrent-wavelength () curves reveal the dependence of the photocurrent on the wavelength. By monitoring the ratios of the two different PEC peak values, a wavelength-resolved ratiometric strategy was realized. Using CdS QDs and methylene blue (MB) as photoactive models, a dual-anodic WR-PEC sensor was established for sensitive detection of Cu. This ratiometric strategy was identified to be based on the quenching effect of Cu towards CdS QDs and enhancement of the MB photocurrent through catalytic oxidation of leuco-MB. Under continuous illumination from 400 nm to 800 nm at a 0.1 V bias potential, a WR-PEC sensor for Cu was developed with a wide linear range and a detection limit of 0.37 nM. This WR-PEC had a greatly improved anti-interference ability in a complex environment, and showed acceptable stability. Moreover, using the CdS/magnesium phthalocyanine (MgPc) and CdTe/MgPc as photoelectrodes, anodic-cathodic and dual-cathodic WR-PEC sensors were established, respectively. The WR-PEC technique could serve as a novel concept for designing ratiometric or multi-channel PEC sensors.
在本工作中,研究并采用了波长分辨比率型光电化学(WR-PEC)技术来构建一种新型的具有良好灵敏度和抗干扰能力的PEC传感器。WR-PEC混合光电极是使用半导体量子点(QDs)和光活性染料逐步组装而成的。在连续照射下,光电流-波长()曲线揭示了光电流对波长的依赖性。通过监测两个不同PEC峰值的比率,实现了一种波长分辨比率策略。以硫化镉量子点(CdS QDs)和亚甲基蓝(MB)作为光活性模型,建立了一种用于灵敏检测铜(Cu)的双阳极WR-PEC传感器。该比率策略被确定是基于铜对硫化镉量子点的猝灭效应以及通过无色亚甲基蓝的催化氧化增强亚甲基蓝光电流。在0.1 V偏置电位下从400 nm到800 nm的连续光照下,开发了一种用于检测铜的WR-PEC传感器,其具有宽线性范围和0.37 nM的检测限。这种WR-PEC在复杂环境中具有大大提高的抗干扰能力,并表现出可接受的稳定性。此外,分别以硫化镉/镁酞菁(MgPc)和碲化镉/镁酞菁作为光电极,建立了阳极-阴极和双阴极WR-PEC传感器。WR-PEC技术可作为设计比率型或多通道PEC传感器的一种新概念。