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Updated: May 1, 2026

Preparation of Silicon Nanowire Field-effect Transistor for Chemical and Biosensing Applications
Published on: April 21, 2016
Ti3C2/CuCoSe2 p-n Heterojunction: Preparation and Mechanism for Machine Learning-enhanced Electrochemical Sensing of
Qiang Li1, Maoyuan Hu1, Jianlong Li1
1College of Chemistry and Materials Science, Sichuan Normal University, Chengdu 610066, China.
Abstract:
Rutin is widely employed as a therapeutic agent, but excessive intake may induce adverse reactions such as gastric discomfort, headache and dermatitis. However, reliably quantifying it in complex matrices remains a significant challenge. Herein, a high-performance electrochemical sensing platform is constructed based on machine learning and interfacial energy-barrier modulation of Ti3C2/CuCoSe2 p-n heterojunction. The heterojunction offers a large specific surface area and abundant defect sites, facilitating enhanced adsorption and electrocatalytic oxidation of rutin. Meanwhile, the built-in energy barrier inhibits carrier recombination and accelerates charge transfer, thereby inducing a significant electrochemical sensing response. Density functional theory (DFT) calculations demonstrate that rutin undergoes an energetically favorable and reversible redox process at the Ti3C2/CuCoSe2 interface, exhibiting high affinity and selectivity for rutin. When coupled with a machine learning-based CatBoost-Decision Tree (CatBoost-DT) model, the sensor achieves markedly improved precision and accuracy with a relative standard deviation of 1.23%, recovery rates ranging from 98.89% to 100.95%, and a detection limit of 0.02 μM, outperforming most traditional electrochemical sensing methods. This study provides an attractive strategy for the rapid, high-sensitive and accurate detection of rutin in complex real samples, and highlights the potential of combining heterojunction engineering with data-driven optimization for next-generation electrochemical sensing.
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