Band-Edge Effect-Induced Electrochemiluminescence Signal Amplification Based on Inverse Opal Photonic Crystals for Ultrasensitive Detection of Carcinoembryonic Antigen.
Xin ZhangZhong-Jie WangXu WangYa-Heng ZhangJian QuShou-Nian DingPublished in: Analytical chemistry (2022)
Photonic crystals (PCs) have emerged as a promising electrochemiluminescence (ECL) matrix in the domain of immunoassay. Making maximum use of light manipulation properties of PCs is highly desired for improving the sensitivity. In this work, we proposed a band-edge effect-induced ECL enhancement strategy based on silica inverse opal PCs (SIOPCs). By fine-tuning the lattice constant and carefully calibrating the stopband position, we found that the band edge of the stopband exerted significant influences on the ECL intensity and spectral distribution. The high density of states at the blue edge of the photonic band gap increased the radiative transition probability of ECL emitters and enhanced the photon extraction during propagation, giving rise to ∼20-fold ECL signal amplification accompanied by a redistributed ECL spectrum for the Ru(bpy) 3 2+ -TPrA system. In combination with the intrinsic structural superiority, like large specific surface area and interconnected macropores, the developed SIOPC electrode was successfully applied in constructing a sandwich-type immunosensor. The fabricated immunosensor displayed a very low detection limit of 0.032 pg/mL and a wide linear range of 0.1 pg/mL-150 ng/mL for a carcinoembryonic antigen assay, showing its potential application in disease diagnosis.
Keyphrases
- label free
- sensitive detection
- high density
- loop mediated isothermal amplification
- high glucose
- diabetic rats
- high speed
- quantum dots
- drug induced
- energy transfer
- nucleic acid
- real time pcr
- computed tomography
- magnetic resonance
- air pollution
- oxidative stress
- gold nanoparticles
- high resolution
- single cell
- mass spectrometry
- simultaneous determination