Ali Rezaei, Tayyebeh Madrakian, Abbas Afkhami, Maryam Mehrban
Inspired by green chemistry principles, recent progress in fabricating electrochemical sensors and microfluidic devices has paved the way for cutting-edge integrated systems. This study introduces an eco-friendly microfluidic electrochemical sensor for the selective detection of tramadol (TRA), employing magnetic molecularly imprinted polymer nanoparticles (MMIPNPs) for extraction, followed by voltammetric analysis at the microchannel outlet using a magneto-multiwalled carbon nanotube/carbon paste electrode (MMWCNTs/CPE). The MMIPNPs were synthesized with TRA as the template molecule, involving the coating of Fe3O4@SiO2 nanoparticles with a polyaminoimide homopolymer. Comprehensive characterization of the magnetic adsorbent via TEM, FTIR, XRD, and magnetometry revealed excellent dispersion and rapid magnetic separation from the microchannel post-adsorbate loading. Optimization studies on key parameters influencing MMIPNPs extraction efficiency underscored their superior selectivity and sensitivity toward TRA. The MMWCNTs/CPE was evaluated through electrochemical impedance spectroscopy, cyclic voltammetry, and differential pulse voltammetry (DPV). DPV-based analysis of TRA oxidation enabled selective quantification across a linear range of 0.01-15.0 μmol L-1, with a detection limit of 0.004 μmol L-1 under optimized conditions. The device exhibited excellent selectivity (relative error ≤ ±5% against interferents), repeatability (RSD 1.7-4.8%), and recovery rates (96.9-105%) in human serum and urine samples.