School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou 225002, China.
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.
Biosensors (Basel). 2023 Jan 29;13(2):200. doi: 10.3390/bios13020200.
Electrochemiluminescence (ECL) analysis has become a powerful tool in recent biomarker detection and clinic diagnosis due to its high sensitivity and broad linear range. To improve the analytical performance of ECL biosensors, various advanced nanomaterials have been introduced to regulate the ECL signal such as graphene, gold nanomaterials, and quantum dots. Among these nanomaterials, some plasmonic nanostructures play important roles in the fabrication of ECL biosensors. The plasmon effect for the ECL signal includes ECL quenching by resonant energy transfer, ECL enhancement by surface plasmon resonance enhancement, and a change in the polarized angle of ECL emission. The influence can be regulated by the distance between ECL emitters and plasmonic materials, and the characteristics of polarization angle-dependent surface plasmon coupling. This paper outlines the recent advances of plasmonic based ECL biosensors involving various plasmonic materials including noble metals and semiconductor nanomaterials. The detection targets in these biosensors range from small molecules, proteins, nucleic acids, and cells thanks to the plasmonic effect. In addition to ECL biosensors, ECL microscopy analysis with plasmonic materials is also highlighted because of the enhanced ECL image quality by the plasmonic effect. Finally, the future opportunities and challenges are discussed if more plasmonic effects are introduced into the ECL realm.
电化学发光(ECL)分析由于其高灵敏度和宽线性范围,已成为生物标志物检测和临床诊断的有力工具。为了提高 ECL 生物传感器的分析性能,已经引入了各种先进的纳米材料来调节 ECL 信号,例如石墨烯、金纳米材料和量子点。在这些纳米材料中,一些等离子体纳米结构在 ECL 生物传感器的制备中起着重要作用。等离子体效应对 ECL 信号的影响包括通过共振能量转移使 ECL 猝灭、通过表面等离子体共振增强使 ECL 增强以及 ECL 发射的偏振角的变化。这种影响可以通过 ECL 发射器和等离子体材料之间的距离以及偏振角相关的表面等离子体耦合特性来调节。本文概述了基于等离子体的 ECL 生物传感器的最新进展,涉及各种等离子体材料,包括贵金属和半导体纳米材料。由于等离子体效应,这些生物传感器的检测目标从小分子、蛋白质、核酸和细胞等。除了 ECL 生物传感器外,还突出了基于等离子体材料的 ECL 显微镜分析,因为等离子体效应提高了 ECL 图像质量。最后,如果将更多的等离子体效应引入 ECL 领域,讨论了未来的机遇和挑战。