A new sensor based on an amino-montmorillonite-modified inkjet-printed graphene electrode for the voltammetric determination of gentisic acid

被引:0
作者
Liliane M. Dongmo
Léopoldine S. Guenang
Sherman L. Z. Jiokeng
Arnaud T. Kamdem
Giscard Doungmo
Bassetto C. Victor
Milica Jović
Andreas Lesch
Ignas K. Tonlé
Hubert Girault
机构
[1] University of Dschang,Department of Chemistry, Electrochemistry and Chemistry of Materials
[2] University of Buea,Department of chemistry, Inorganic Chemistry Laboratory
[3] UMR 7564 CNRS – Université de Lorraine,Laboratoire de Chimie Physique et Microbiologie pour les Matériaux et l’Environnement (LCPME)
[4] University of Freiburg,Institute of Microsystems Engineering IMTEK, Laboratory for Sensors
[5] Christian-Albrechts-Universität zu Kiel,Institute of Inorganic Chemistry
[6] EPFL,Laboratoire d’Electrochimie Physique et Analytique
[7] University of Bologna,Department of Industrial Chemistry “Toso Montanari”
来源
Microchimica Acta | 2021年 / 188卷
关键词
Montmorillonite; Organoclay; Inkjet-printed graphene electrode; Electroanalysis; Gentisic acid;
D O I
暂无
中图分类号
学科分类号
摘要
An amperometric sensor based on an inkjet-printed graphene electrode (IPGE) modified with amine-functionalized montmorillonite (Mt-NH2) for the electroanalysis and quantification of gentisic acid (GA) has been developed. The organoclay used as IPGE modifier was prepared and characterized by infrared spectroscopy, X-ray diffraction, scanning electron microscopy, CHN elemental analysis, and thermogravimetry. The electrochemical features of the Mt-NH2/IPGE sensor were investigated by cyclic voltammetry and electrochemical impedance spectroscopy. The sensor exhibited charge selectivity ability which was exploited for the electrochemical oxidation of GA. The GA amperometric response was high in acidic medium (Brinton-Robinson buffer, pH 2) due to favorable interactions between the protonated amine groups and the negatively charged GA. Kinetic studies were also performed by cyclic voltammetry, and the obtained electron transfer rate constant of 11.3 s−1 indicated a fast direct electron transfer rate of GA to the electrode. An approach using differential pulse voltammetry was then developed for the determination of GA (at + 0.233 V vs. a pseudo Ag/Ag+ reference electrode), and under optimized conditions, the sensor showed high sensitivity, a wide working linear range from 1 to 21 μM (R2 = 0.999), and a low detection limit of 0.33 μM (0.051 ± 0.01 mg L−1). The proposed sensor was applied to quantify GA in a commercial red wine sample. The simple and rapid method developed using a cheap clay material could be employed for the determination of various phenolic acids.
引用
收藏
相关论文
共 245 条
  • [1] Levy G(1972)Salicylate accumulation kinetics in man New Engl J Med 287 430-432
  • [2] Tsuchiya T(2018)Cytotoxicity, mutagenicity, and antimutagenicity of the gentisic acid on HTC cells Drug Chem Toxicol 41 155-161
  • [3] Cavalcante FML(2005)Gentisic acid, an aspirin metabolite, inhibits oxidation of low-density lipoprotein and the formation of cholesterol ester hydroperoxides in human plasma Eur J Pharmacol 513 173-179
  • [4] Almeida IV(2020)A review on gentisic acid as a plant derived phenolic acid and metabolite of aspirin: comprehensive pharmacology, toxicology, and some pharmaceutical aspects (2020) Phytother Res 34 729-741
  • [5] Dusman E(1952)Laboratory and clinical experience with sodium gentisate in rheumatic disease Ann Intern Med 36 1513-1519
  • [6] Mantovani MS(2018)Gentisic acid, a quinonoid aspirin metabolite in cancer prevention and treatment - new horizons in management of brain tumors and systemic cancers J Cancer Res Oncobiol 1 109-127
  • [7] Vicentini VEP(2018)Development and validation of high performance liquid chromatographic method for determination of gentisic acid and related renal cell carcinoma biomarkers in urine Microchem J 137 85-89
  • [8] Ashidate K(2020)Analysis of gentisic acid and related renal cell carcinoma biomarkers using reversed-phase liquid chromatography with water-rich mobile phases J Liq Chromatogr Relat Technol 42 681-687
  • [9] Kawamura M(2015)Simultaneous determination of urinary quinolinate, gentisate, 4-Hydroxybenzoate, and a-ketoglutarate by high-performance liquid chromatography-tandem mass spectrometry Anal Methods 7 6572-6578
  • [10] Mimura D(1994)Matrix isopotential synchronous fluorescence direct determination of gentisic acid in urine Anal Chim Acta 296 87-97