State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry , Chinese Academy of Sciences (CAS) , No. 5625 Renmin Street , Changchun 130022 , P. R. China.
College of Chemistry , Liaoning University , Shenyang 110036 , P. R. China.
Anal Chem. 2020 Jan 7;92(1):845-852. doi: 10.1021/acs.analchem.9b03472. Epub 2019 Dec 10.
Signal amplification for electrochemiluminescence (ECL) plays a significant role in ultrasensitive detection of disease biomarkers. We report herein a new signal amplification strategy-quasi-photonic crystal nanomembrane-based light scattering enhancement for ECL signal amplification, via fabricating a novel close-packed monolayered SiO-nanomembrane as solid-state ECL electrodes. In the system, the quasi-photonic crystal structure of the monolayered SiO-nanomembrane led to intense light scattering within the nanofilm, which significantly increases the photon flux and then definitely improves the excitation number of the luminescent molecules (Ru(bpy)). Reinforced by the nanostructured electrode surface of the nanomembrane, the as-prepared ECL electrode exhibited significant ECL enhancement, ∼77-fold enhancement in the classic Ru(bpy)-TPrA system. We further constructed a sandwich-type SiO-nanomembrane based solid-state ECL immunobiosensor for ultrasensitive detection of cardiac troponin I (cTnI). Under optimal conditions, the immunobiosensor exhibited a very low limit of detection (LOD) of 5.6 fg mL for cTnI. Due to the cheap and easy availability of the materials, this study and findings not only provide an efficient way to improve the ECL intensity but also benefit the design of novel ECL electrodes for various biomarker detections.
电化学发光(ECL)的信号放大在疾病生物标志物的超灵敏检测中起着重要作用。本文报道了一种新的信号放大策略——基于准光子晶体纳米膜的光散射增强用于 ECL 信号放大,通过制备新型紧密堆积的单层 SiO2 纳米膜作为固态 ECL 电极。在该体系中,单层 SiO2 纳米膜的准光子晶体结构导致纳米膜内的强光散射,显著增加了光子通量,从而肯定提高了发光分子(Ru(bpy))的激发数。由于纳米膜的纳米结构电极表面的增强作用,所制备的 ECL 电极表现出显著的 ECL 增强,在经典的 Ru(bpy)-TPrA 体系中增强约 77 倍。我们进一步构建了基于 SiO2 纳米膜的三明治型固态 ECL 免疫生物传感器,用于超灵敏检测心肌肌钙蛋白 I(cTnI)。在最佳条件下,该免疫生物传感器对 cTnI 的检测限(LOD)低至 5.6 fg mL。由于材料便宜且易于获得,这项研究和发现不仅提供了一种有效提高 ECL 强度的方法,还有利于设计用于各种生物标志物检测的新型 ECL 电极。