Electrochemical behaviour of 5-fluorouracil at electrochemically pre-treated glassy carbon electrode
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[1] S. S. C.,et al. Voltammetric study of dopamine at tavaborole modified carbon paste electrode , 2024, Sensing Technology.
[2] B. E. Kumara Swamy,et al. Electrochemical Studies of Catechol And Hydroquinone At Poly(Nigrosine) Modified Carbon Paste Electrode : A Cyclic Voltammetric Study , 2023, Sensing Technology.
[3] T. Dodevska,et al. Recent advances in electrochemical determination of anticancer drug 5-fluorouracil , 2023, ADMET & DMPK.
[4] B. Kumaraswamy,et al. A Selective Electrochemical Sensing of Serotonin and Epinephrine at Glassy Carbon Electrode Modulated with Brilliant Green: A Voltammetric Study , 2023, Current Analytical Chemistry.
[5] B. E. Kumara Swamy,et al. An Efficient Electrochemical Sensor Based on ZnO/Co3O4 Nanocomposite Modified Carbon Paste Electrode for the Sensitive Detection of Hydroquinone and Resorcinol , 2023, Inorganic Chemistry Communications.
[6] Anping Deng,et al. Electrochemiluminescence Resonance Energy Transfer System based on ox-MWCNTs-IGQDs and PdAg Nanosheets for the Detection of 5-Fluorouracil in Serum , 2022, Microchemical Journal.
[7] Mona Elfiky,et al. Vanillin-crosslinked chitosan/ZnO nanocomposites as a drug delivery system for 5-fluorouracil: study on the release behavior via mesoporous ZrO2–Co3O4 nanoparticles modified sensor and antitumor activity , 2022, RSC advances.
[8] M. Özacar,et al. Electrochemical Sensor for Facile and Highly Selective Determination of Antineoplastic Agent in Real Samples Using Glassy Carbon Electrode Modified by 2D-MoS2 NFs/TiO2 NPs , 2021, Topics in Catalysis.
[9] K. Chetankumar,et al. Sensitive and selective sensor for 3, 4-dihydroxyphenethylamine and uric acid at poly (Orange CD) modified carbon paste electrode , 2021 .
[10] H. Nagabhushana,et al. Effect of RGO-Y2O3 and RGO-Y2O3:Cr3+ nanocomposite sensor for dopamine , 2021, Scientific Reports.
[11] A. Mohamadi,et al. Study the adsorption process of 5-Fluorouracil drug on the pristine and doped graphdiyne nanosheet , 2021, Journal of Molecular Modeling.
[12] M. Rahimi‐Nasrabadi,et al. A modified sensitive carbon paste electrode for 5-fluorouracil based using a composite of praseodymium erbium tungstate , 2020 .
[13] H. Karimi-Maleh,et al. A Sensitive Sensor for Nano-Molar Detection of 5-Fluorouracil by Modifying a Paste Sensor with Graphene Quantum Dots and an Ionic Liquid , 2020 .
[14] W. Lisowski,et al. Photocatalytic degradation of 5-fluorouracil in an aqueous environment via Bi–B co-doped TiO2 under artificial sunlight , 2020, International Journal of Environmental Science and Technology.
[15] Handerson Rodrigues Silva Lima,et al. Development of a low-cost electrochemical sensor based on babassu mesocarp (Orbignya phalerata) immobilized on a flexible gold electrode for applications in sensors for 5-fluorouracil chemotherapeutics , 2018, Analytical and Bioanalytical Chemistry.
[16] Z. Es’haghi,et al. Silver nanoparticles decorated polyaniline nanocomposite based electrochemical sensor for the determination of anticancer drug 5‐fluorouracil , 2018, Journal of pharmaceutical and biomedical analysis.
[17] B. Swamy,et al. Pre-treated glassy carbon electrode sensor for catechol: A voltammetric study , 2018, Journal of Electroanalytical Chemistry.
[18] A. Ehsani,et al. Graphene oxides/multi-walled carbon nanotubes hybrid-modified carbon electrodes for fast and sensitive voltammetric determination of the anticancer drug 5-fluorouracil in spiked human plasma samples , 2018, Chemical Papers.
[19] Qibing Zhang. Electrochemical Determination of the Anticancer Drug Capecitabine Based on a Graphene-Gold Nanocomposite- Modified Glassy Carbon Electrode , 2017 .
[20] D. P. de Sousa,et al. Overview of the Role of Vanillin on Redox Status and Cancer Development , 2016, Oxidative medicine and cellular longevity.
[21] N. Shetti,et al. Electrochemical behavior of an anticancer drug 5-fluorouracil at methylene blue modified carbon paste electrode. , 2016, Materials science & engineering. C, Materials for biological applications.
[22] A. F. Shojaei,et al. A novel 5-fluorouracile anticancer drug sensor based on ZnFe2O4 magnetic nanoparticles ionic liquids carbon paste electrode , 2016 .
[23] N. Shetti,et al. Development of Voltammetric Method for the Determination of an Anticancer Drug, 5-Flurouracil, at a Multiwalled Carbon Nanotubes Paste Electrode , 2016 .
[24] N. Shetti,et al. Electrochemical behavior of anticancer drug 5-fluorouracil at carbon paste electrode and its analytical application , 2016, Journal of Analytical Science and Technology.
[25] Guo-Qing Huang,et al. Electrochemical sensor for Isoniazid based on the glassy carbon electrode modified with reduced graphene oxide-Au nanomaterials. , 2015, Materials science & engineering. C, Materials for biological applications.
[26] K. Gobi,et al. Biopolymer Stabilized Nanogold Particles on Carbon Nanotube Support as Sensing Platform for Electrochemical Detection of 5-Fluorouracil in-vitro , 2015 .
[27] Anilesh Kumar,et al. Development of molecularly imprinted polymer nanoarrays of N-acryloyl-2-mercaptobenzamide on a silver electrode for ultratrace sensing of uracil and 5-fluorouracil. , 2015, Journal of materials chemistry. B.
[28] Joseph T. Meyerowitz,et al. Engineering Transcriptional Regulator Effector Specificity using Computational Design and In Vitro Rapid Prototyping: Developing a Vanillin Sensor , 2015, bioRxiv.
[29] B. Swamy,et al. Pretreated/Carbon paste electrode based voltammetric sensors for the detection of dopamine in presence of ascorbic acid and uric acid , 2013 .
[30] Guijun Shen,et al. Electrochemical behavior of 5-fluorouracil on a glassy carbon electrode modified with bromothymol blue and multi-walled carbon nanotubes , 2013 .
[31] Xiaoli Zhang,et al. Electrochemical sensor for epinephrine based on a glassy carbon electrode modified with graphene/gold nanocomposites , 2012 .
[32] B. Swamy,et al. Electrochemical investigations of potassium ferricyanide and dopamine by sodium dodecyl sulphate modified carbon paste electrode: A cyclic voltammetric study , 2009 .
[33] C. Srisomsap,et al. Vanillin suppresses metastatic potential of human cancer cells through PI3K inhibition and decreases angiogenesis in vivo. , 2009, Journal of agricultural and food chemistry.
[34] Ilaria Palchetti,et al. A disposable electrochemical sensor for vanillin detection , 2006 .
[35] Hongyuan Chen,et al. Voltammetric Behavior and Detection of DNA at Electrochemically Pretreated Glassy Carbon Electrode , 2001 .
[36] S. Hassan,et al. Membrane sensors for the selective determination of fluorouracil , 1998 .
[37] R. Engstrom. Electrochemical pretreatment of glassy carbon electrodes , 1982 .
[38] Jianfeng Zhou,et al. A Simple and Sensitive Electrochemical Sensor for 3-Nitrotyrosine Based on Electrochemically Anodic Pretreated Glassy Carbon Electrode in Anionic Surfactant Medium , 2019, Journal of The Electrochemical Society.
[39] P. Norouzi,et al. DNA Biosensor for Determination of 5-Fluorouracil based on Gold Electrode Modified with Au and Polyaniline Nanoparticles and FFT Square Wave Voltammetry , 2019 .
[40] C. Pessôa,et al. Porphyran-capped gold nanoparticles modified carbon paste electrode: a simple and efficient electrochemical sensor for the sensitive determination of 5-fluorouracil , 2018 .
[41] P. Sharma,et al. Development of Uracil and 5-Fluorouracil Sensors Based on Molecularly Imprinted Polymer-Modifi ed Hanging Mercury Drop Electrode , 2009 .