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基于双光电协同信号放大的自供电光电化学免疫传感平台用于灵敏的 CEA 检测。

Self-powered photoelectrochemical immunosensing platform for sensitive CEA detection using dual-photoelectrode synergistic signal amplification.

机构信息

School of Chemistry and Chemical Engineering, University of Jinan, Jinan, 250022, China.

School of Materials Science and Engineering, Qilu University of Technology, Jinan, 250353, China.

出版信息

Biosens Bioelectron. 2024 Apr 15;250:116075. doi: 10.1016/j.bios.2024.116075. Epub 2024 Jan 30.

Abstract

Self-powered photoelectrochemical (PEC) sensing, as an emerging sensing mode, can effectively solve the problems such as weak anti-interference ability and poor signal response of individual photoanode or photocathode sensing. In this work, an ITO/Co-CuInS photocathode and ITO/WO@CdS photoanode based self-powered cathodic PEC immunosensor was developed, which integrated dual-photoelectrode to synergistic amplify the signal for highly sensitive and specific detection of carcinoembryonic antigen (CEA). The self-powered PEC sensor could drive electrons transfer through the difference in Fermi levels between the two photoelectrodes without an external bias voltage. The photoanode was introduced to amplify the photoelectric signal, and the photocathode was only designed for the construction of sensing interfaces. The proposed sensor quantitatively determined the target CEA with the detection limit of 0.23 pg/mL and a linear correlation confine of 0.1 pg/mL ∼100 ng/mL. The constructed immunosensing platform exhibited high sensitivity, satisfactory stability and great biological detection selectivity, providing a feasible and effective strategy for the manufacture of new self-powered sensors in high-performance PEC bioanalytical applications.

摘要

自供电光电化学(PEC)传感作为一种新兴的传感模式,可以有效解决单个光电阳极或光电阴极传感抗干扰能力弱、信号响应差等问题。在这项工作中,开发了一种基于 ITO/Co-CuInS 光电阴极和 ITO/WO@CdS 光阴极的自供电阴极 PEC 免疫传感器,它集成了双光电电极,协同放大信号,用于高灵敏度和特异性检测癌胚抗原(CEA)。自供电 PEC 传感器可以通过两个光电电极之间的费米能级差驱动电子转移,而无需外部偏置电压。光电阳极用于放大光电信号,而光电阴极仅设计用于构建传感界面。该传感器以 0.23 pg/mL 的检测限和 0.1 pg/mL~100 ng/mL 的线性相关范围定量测定了目标 CEA。所构建的免疫传感平台表现出高灵敏度、令人满意的稳定性和出色的生物检测选择性,为高性能 PEC 生物分析应用中新型自供电传感器的制造提供了一种可行且有效的策略。

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