Development of a Functionalized SiO2 Supported Ni Nanoparticles Based Non-Enzymatic Amperometric Dopamine Sensor
Year 2024,
, 999 - 1012, 31.12.2024
Yunus Emre Yildirim
Muhammet Güler
Abstract
In the present work, a novel electrochemical dopamine (DA) sensor depending on Nickel (Ni) nanoparticles decorated (3-aminopropyl)triethoxysilane (APTES) modifed silica (SiO2) was fabricated. Hence, Ni@SiO2-APTES was synthesized by the conventional wet-impregnation method. The structure of the compozite was evaluated using Fourier transform infrared spectroscopy (FTIR), Scanning electron microscopy-energy dispersive X-ray (SEM-EDX), and X-ray diffraction (XRD). The synthesized Ni@SiO2-APTES was loaded on glassy carbon working electrode (GCE). Also, Nafion (Nf) was drop-casted on Ni@SiO2-APTES/GCE to stabilize the electrode. The fabricated Nf/Ni@SiO2-APTES/GCE working electrode was electrochemicaly evaluated using cyclic voltammetry (CV), electrochemical impedance spectroscopy (EIS) and amperometry. CV and EIS results indicated that Ni nanoparticles increased both the conductivity and sensitivity of the working electrode. The linear detection range for DA was found to be 0.2 – 252 µM with limit of detection (LOD) was 0.07 µM depending on S/N of 3. The sensitivity was found to be 578.26 µA mM-1 cm-2 depending on the active surface area of the modified working electrode. The sensor exhibited excellent selectivity in the electrolyte solution including ascorbic acid, glucose, fructose, sucrose, mannose, uric acid, and phenylalanine. The sensor had satisfactory repeatability and reproduciblity. It was observed that the sensor showed an electrocatalytic response of 95.33% after 28 days. According to this result, it was concluded that the sensor was extremely stable within the studied time period. The applicability of Nf/Ni@SiO2-APTES/GCE was tested using dopamine HCl injection (200 mg/5 mL).
Ethical Statement
The study is complied with research and publication ethics.
Supporting Institution
Van Yüzüncü Yıl University, Coordination of Scientific Research Projects
Project Number
FYL-2021-9370
Thanks
This study was supported by Van Yüzüncü Yıl University, Scientific Research Projects Department (project number FYL-2021-9370).
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Year 2024,
, 999 - 1012, 31.12.2024
Yunus Emre Yildirim
Muhammet Güler
Project Number
FYL-2021-9370
References
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- [2] T. V. Maia, V. A. Conceição, “Dopaminergic disturbances in Tourette syndrome: an integrative account,” Biol. psychiatry, vol. 84, no. 5, pp. 332-344, September 2018.
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- [28] H. Yang, D. Liu, X. Zhao, J. H. Yang, H. Chang, R. Xing, S. Liu, “AuPd bimetallic nanoparticle-supported carbon nanotubes for selective detection of dopamine in the presence of ascorbic acid,” Anal. methods, vol. 9, no. 21, 3191-3199, May 2017.
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- [32] R. Nehru, S. M. Chen, “Carbon supported olivine type phosphate framework: a promising electrocatalyst for sensitive detection of dopamine,” RSC adv., vol. 8, pp. 27775-27785, August 2018.
- [33] A. García-Miranda Ferrari, C. W. Foster, P. J. Kelly, D. A. Brownson, C. E. Banks, “Determination of the electrochemical area of screen-printed electrochemical sensing platforms,” Biosensors, vol. 8, no. 2, 53. (2018).
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- [36] N. S. Anuar, W. J. Basirun, M. Shalauddin, S. Akhter, “A dopamine electrochemical sensor based on a platinum–silver graphene nanocomposite modified electrode,” RSC adv., vol. 10, pp. 17336-17344, May 2020.
- [37] Y. Y. Li, P. Kang, S. Q. Wang, Z. G. Liu, Y. X. Li, Z. Guo, “Ag nanoparticles anchored onto porous CuO nanobelts for the ultrasensitive electrochemical detection of dopamine in human serum,” Sens. Actuators B: Chem., vol. 327, pp. 128878, January 2021.
- [38] C. Xue, Q. Han, Y. Wang, J. Wu, T. Wen, R. Wang, J. Hong, X. Zhou, H. Jiang, “Amperometric detection of dopamine in human serum by electrochemical sensor based on gold nanoparticles doped molecularly imprinted polymers,” Biosens. Bioelectron., vol. 49, pp. 199-203, November 2013.