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Updated: Jul 3, 2026

Fluorescence detection methods for microfluidic droplet platforms
Published on: December 10, 2011
A Field-Portable Fe(IV)-Mediated Competitive Quenching Chemiluminescence Platform with a Synchronous Y-Shaped
Chengyu Gu1, Huixin Shao2, Yang Yue1
1Shanghai Engineering Research Center of Biotransformation of Organic Solid Waste, School of Ecological and Environmental Sciences, East China Normal University, Shanghai 200241, P. R. China.
None:
The conventional 4-aminoantipyrine (4-AAP) method for volatile phenols (VPs) fails to detect certain substituted phenols, leading to an underestimation of VPs in water. To overcome this "selectivity blind spot", we developed an integrated flow-injection analysis chemiluminescence (FIA-CL) platform that quantifies VPs as phenol-equivalent concentrations, providing a more inclusive readout than the 4-AAP method and enabling rapid and reliable monitoring. This sensing mechanism utilizes a competitive reaction where VPs compete with the CL probe (naproxen, NAP) for reactive iron species (Fe(IV)) generated by Fe(II)-activated periodate, resulting in concentration-dependent signal attenuation. Moreover, to address signal loss due to separation between mixing and detection units in conventional FIA-CL systems, we designed a Y-shaped flow-through cell that synchronizes mixing and detection within the same microzone for real-time signal capture. The optimized platform yielded a detection limit of 3.47 μg L-1 with a linear range of 0.011-20 mg L-1, outperforming the 4-AAP method with a 3-fold lower LOD and an 8-fold wider range. Analysis of real water samples showed that VPs concentrations measured by the platform exceeded those obtained by the 4-AAP method, with mass spectrometry confirming that this discrepancy arises from 4-AAP's failure to respond to certain substituted phenols. Thus, our platform provides a sensitive, broad-spectrum tool for VPs monitoring.
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