Methods: NIM was determined utilizing (GO-MWCNTs/GCE) using DPV. The impact of different experimental factors, such as scan rate, pH, and aggregation time, on the voltammetric responses of NIM was assessed.
Results: NIM achieved an irreversible electrochemical reaction controlled by the diffusion-controlled electrode method at GO-MWCNTS/GCE. This research examined the relationship between peak oxidation current and concentration under optimal conditions. A calibration curve was plotted showing the linear range of 0.06-0.8 ppm and limited of detection of 0.000318 ppm. The approach was effectively used to detect NIM in drugs as well as in human serum and urine samples. Results refer that the chosen method is fast, responsive, and cost-effective. The sensor (GO-MWCNTs/GCE) had an excellent reproducibility and good repeatability.
Chandran, S. Saggar, K.P. Priya, R.N. Saha, Drug Dev. Ind. Pharm. 26 (2000) 229–234.
Miljkovic, B. Brzakovic, I. Kovacevic, D. Agbaba, M. Pokrajac, J. Plan. Chromatogr.-Modern TLC 16 (2003) 211–213.
Svorc, D. M. Stankovic, E. Mehmeti, and K. Kalcher, Anal. Methods 6 (2014) 4853.
Svorc, D. M. Stankovic, and K. Kalcher, Diam. Relat. Mater. 42 (2014) 1.
M. Stankovic, L. Svorc, E. Mehmeti, and K. Kalcher, Microchem. J. 118 (2015) 95.
Navratilova, P. Kula, Clay modified electrodes: present applications and prospects, Electroanalysis 15 (2003) 837–846.
Mousty, Biosensing applications of clay-modified electrodes: a review, Anal. Bioanal. Chem. 396 (2010) 315–325.
M. Macha, A. Fitch, Clays as architectural units at modified electrodes, Mikrochim. Acta 128 (1998) 1–18.
K. O. Aldulaim, N. M. Hameed, T. A. Hamza, A. S. Abed, The antibacterial characteristics of fluorescent carbon nanoparticles modified silicone denture soft liner.J. Nanostruct., 12 (2022) 774-781.
(a) N. Teradal, J. Seetharamappa, Bulk modification of carbon paste electrode with Bi2O3 nanoparticles and its application as an electrochemical sensor for selective sensing of anti-HIV drug nevirapine, Electroanalysis 27 (2015) 2007–2016; (b) N. Nesakumar, S. Sethuraman, U. Maheswari Krishnan, J.B. Balaguru Rayappan, Electrochemical acetyl choline sterase biosensor based on ZnO nanocuboids modified platinum electrode for the detection of carbosulfan in rice, Biosens. Bioelectron. 77 (2016) 1070–1077; (c) A.F. Shojaei, K. Tabatabaeiana, S. Shakeri, F. Karimi, A novel 5-fluorouracile anticancer drug sensor based on ZnFe2O4 magnetic nanoparticles ionic liquids carbon paste electrode, Sensors Actuators B Chem. 230 (2016) 607–614.
S.K. Gowthaman, B. Sinduja, S. Abraham John, Tuning the composition of goldsilver bimetallic nanoparticles for the electrochemical reduction of hydrogen peroxide and nitrobenzene, RSC Adv. 6 (2016) 63433–63444.
P. Shetti, S.J. Malode, S.T. Nandibewoor, Electro-oxidation of captopril at a gold electrode and its determination in pharmaceuticals and human fluids, Anal. Methods 20 (2015) 8673–8682.
Ilager , H. Seo , N.P. Shetti , S.S. Kalanur , CTAB modified Fe-WO3 as an electro- chemical detector of amitrole by catalytic oxidation, J. Environ. Chem. Eng. 8 (6) (2020) 104580.
Raeisi-Kheirabadi N.; Nezamzadeh-Ejhieh A.; Aghaei H. A brief study on the kinetic of the voltammetric behavior of the modified carbon paste electrode with NiO nanoparticles towards loratadine as a carboxylate-amidic drug compound. Microchem. J. 162 (2021) 105869.
J. Bard , L.R. Faulkner , J. Leddy , C.G. Zoski , Electrochemical Methods: Fundamen- tals and Applications, Wiley, New York,
Thongnopnua, and C. Poeaknapo, J. Pharm. Biomed. Anal. 37 (2005) 763.
Bahrami, and S. Mirzaeei, J. Pharm. Biomed. Anal. 36 (2004) 163.
Josefsson, A. L. Zackrisson, and B. Norlander, J. Chromatogr. B 672 (1995) 310.
Martins I, Cristiani FC, Larissa SC, et al. Determination of parabens in shampoo using high performance liquid chromatography with Amperometric detection on a borondopeddiamond electrode. Talanta 85 (2011) 1-7.
C. Diculescu, A. Militaru, A. Shah, R. Qureshi, L. Tugulea, and A. M. Oliveira-Brett, J. Electroanal. Chem., 1 (2010) 647.
Asad Ullah, Abdur Rauf, Usman Ali Rana, Rumana Qureshi, Muhammad Naeem Ashiq, Hidayat Hussain, Heinz-Bernhard Kraatz, Amin Badshah, and Afzal Shaha, pH Dependent Electrochemistry of Anthracenediones at a Glassy Carbon Electrode, Journal of The Electrochemical Society, 162 (2015) 157-163.
Prashanth SN, Ramesh KC, Seetharamappa J. Electrochemical oxidation of an immunosuppressant, mycophenolate mofetil, and its assay in pharmaceutical formulations. Int J Electrochem 2011 (2011) 1-7.
K. Gosser, Cyclic Voltammetry: Simulation and Analysis of Reaction Mechanisms, VCH, New York, 1993.
A. Hendawy , H.M. Elwy , A.M. Fekry , Electrochemical and chemometric determi- nation of dorzolamide and timolol in eye drops using modified multiwall carbon nanotube electrode, Int. J. Pharm. Pharmac. Sci. 9 (2017) 43.
M. Bond, Modern Polarographic Methods in Analytical Chemistry, Marcel Dekker Inc, USA, 1980.
Laviron , General expression of the linear potential sweep voltammogram in the case of diffusionless electrochemical systems, J. Electroanal. Chem. Interfacial Elec- trochem. 101 (1979) 19–28.
J. Bard, L.R. Faulkner, Electrochemical Methods: Fundamentals andApplications, Wiley New York,1980.
Khaksa, N. Udupa, Rapid and sensitive method for determination of nimesulide in human plasma by high-performance liquid chromatography. J Chromatogr B Biomed Sci Appl 727 (1999) 241–244 .
E. Barrientos-Astigarraga, Y.B. Vannuchi, M. Sucupira et al., Quantification of nimesulide in human plasma by high-performance liquid chromatography/tandem mass spectrometry. Application to bioequivalence studies. J Mass Spectrom 36 (2001) 1281–1286.
Wang, X. Shao, Q. Liu, Q. Qu, G. Yang and X. Hu, J. Pharm. Biomed. Anal., 42 (2006) 237.
Chandran, P. Ravi, P.R. Jadhav, R.N. Saha, A simple, rapid, and validated LC method for the estimation of nimesulide in human serum and its application in bioavailability studies. Anal Lett 41 (2008) 2437–2451.
Zhang, X. Tan, D. Zhao, S. Tan, Z. Huang, Y. Mi and Z. Huang, Electrochim. Acta, 55 (2010) 2522.
Zhang, X. Tan, D. Zhao, S. Tan, L. Liu, L. Wang and Z. Huang, Chem. Res. Chin. Univ., 27 (2011) 566.
F. Pereira, M. C. Marra, A. B. Lima, W. T. P. dos Santos, R. A. A. Munoz and E. M. Richter, Diamond Relat. Mater., 39 (2013) 41.
D. Bukkitgar, N. P. Shetti, R. M. Kulkarni, S. B. Halbhavi, M. Wasim, M. Mylar, P. S. Durgi and S. S. Chirmure, J. Electroanal. Chem.,778 (2016) 103.
Mani Govindasamy, Veerappan Mani, Shen-Ming Chen, Highly sensitive determination of non-steroidal anti-inflammatory drug nimesulide using electrochemically reduced graphene oxide nanoribbons, RSC Adv., 7 (2017) 33043–33051.
B. Deroco, R.C. Rocha-Filho, O. Fatibello-Filho, A new and simple method for the simultaneous determination of amoxicillin and nimesulide using carbon black within a dihexadecylphosphate film as electrochemical sensor. Talanta 179, (2018) 115–123.
Nagaraj P. Shetti , Shweta J. Malode, Deepti S. Nayak , Shikandar D. Bukkitgar , Gangadhar B. Bagihalli , Raviraj M. Kulkarni , Kakarla Raghava Reddy, Novel nanoclay-based electrochemical sensor for highly efficient electrochemical sensing nimesulide, Journal of Physics and Chemistry of Solids 137 (2020) 109210.
Marcelina Łysoń, Anna Górska, Beata Paczosa‑Bator, Robert Piech, Nimesulide Determination on Carbon Black‑Nafion Modified Glassy Carbon Electrode by Means of Adsorptive Stripping Voltammetry, Electrocatalysis 12 (2021) 641–649.
Rashak,A. and Karam,F. F (2024). Highly sensitive determination of nimesulide using Glassy Carbon Electrode Enhanced Graphene Oxide-Multi-walled Carbon Nanotubes. Chemical Review and Letters, 7(4), 719-730. doi: 10.22034/crl.2024.469494.1390
MLA
Rashak,A. , and Karam,F. F. "Highly sensitive determination of nimesulide using Glassy Carbon Electrode Enhanced Graphene Oxide-Multi-walled Carbon Nanotubes", Chemical Review and Letters, 7, 4, 2024, 719-730. doi: 10.22034/crl.2024.469494.1390
HARVARD
Rashak A., Karam F. F (2024). 'Highly sensitive determination of nimesulide using Glassy Carbon Electrode Enhanced Graphene Oxide-Multi-walled Carbon Nanotubes', Chemical Review and Letters, 7(4), pp. 719-730. doi: 10.22034/crl.2024.469494.1390
CHICAGO
A. Rashak and F. F Karam, "Highly sensitive determination of nimesulide using Glassy Carbon Electrode Enhanced Graphene Oxide-Multi-walled Carbon Nanotubes," Chemical Review and Letters, 7 4 (2024): 719-730, doi: 10.22034/crl.2024.469494.1390
VANCOUVER
Rashak A., Karam F. F Highly sensitive determination of nimesulide using Glassy Carbon Electrode Enhanced Graphene Oxide-Multi-walled Carbon Nanotubes. Chem. Rev. Lett., 2024; 7(4): 719-730. doi: 10.22034/crl.2024.469494.1390