Non-enzymatic electrochemical sensors using Polyaniline:Metal orotate nanocomposites for selective dopamine and glucose detection: Predicting sensor performance with machine learning algorithms

被引:0
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作者
Yildiz, Dilber Esra [1 ]
Tasaltin, Nevin [2 ,3 ,4 ,5 ]
Baytemir, Guelsen
Gursu, Gamze [2 ]
Karakus, Selcan [6 ,9 ]
Yildirim, Tugrul [7 ]
Sahin, Yesim Muge [8 ]
Kucukdeniz, Tarik
Kose, Dursun Ali [10 ]
机构
[1] Hitit Univ, Dept Phys, Corum, Turkiye
[2] Maltepe Univ, Environm & Energy Technol Res Ctr, Istanbul, Turkiye
[3] Maltepe Univ, Dept Renewable Energy Tech & Management, Istanbul, Turkiye
[4] Maltepe Univ, Dept Basic Sci, Istanbul, Turkiye
[5] Maltepe Univ, CONSENS Inc, Technopark Istanbul, Res Ctr, Istanbul, Turkiye
[6] Istanbul Univ Cerrahpasa, Dept Chem, Istanbul, Turkiye
[7] Hitit Univ, Vocat Sch Tech Sci, Occupat Hlth & Safety Program, TR-19030 Corum, Turkiye
[8] Arel Univ, Arel Potkam, Istanbul, Turkiye
[9] Hlth Biotechnol Joint Res & Applicat Ctr Excellenc, TR-34220 Istanbul, Turkiye
[10] Hitit Univ, Dept Chem, Corum, Turkiye
关键词
Orotate; Semiconductor materials; Machine learning algorithms; Dopamine; Glucose; FACILE SYNTHESIS; ASCORBIC-ACID; URIC-ACID; IMPEDANCE; SPECTROSCOPY; FABRICATION; ELECTRODES; COMPLEXES; MODULUS; OXIDE;
D O I
10.1016/j.mssp.2025.109492
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this study, we developed novel non-enzymatic electrochemical biosensors, capitalizing on the capabilities of orotate metal complexes encompassing Co(II), Cu(II), Ni(II), and Zn(II) cations coordinated within polyaniline (PANI) nanocomposites (NCs). Our approach involved the meticulous crystallization of metal cation complexes from solution, utilizing orotic acid as a ligand. Through the utilization of a cost-efficient and uncomplicated sonication technique, we synthesized PANI:Co(II), PANI:Ni(II), PANI:Cu(II), and PANI:Zn(II) orotate NCs. Our results demonstrated that the PANI:Zn(II) orotate NCs-based sensor exhibited the highest sensitivity, recording 99.25 mu A cm- 2 mu M- 1 for dopamine detection, with a remarkable limit of detection (LOD) of 0.74 mu M. Furthermore, the sensor effectively detected glucose with a sensitivity of 24.39 mu Acm- 2mM-1 and a LOD of 1.89 mM. Importantly, the sensor displayed exceptional selectivity towards dopamine. To further enhance the sensor performance, machine learning algorithms were applied to analyze and predict the sensor's output. Models such as Linear Regression and Artificial Neural Networks (ANN) were employed to interpret the electrochemical results and predict performance metrics like sensitivity and selectivity. The outcomes of our sensor assessments underscore the potential of the PANI:Zn(II) orotate NCs as a robust platform for dopamine detection applications. Our findings provide insights for improving PANI: Zn(II) orotate NCs in biosensing. PANI:metal orotate NCs function as semiconductor materials, with sensor sensitivity closely tied to their conductance, conductivity, and impedance.
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页数:16
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