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研究简报

芦丁碳纳米管修饰玻碳电极电催化氧化肼的研究

  • 张宏芳 ,
  • 盛庆林 ,
  • 郑建斌
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  • 西北大学化学与材料科学学院合成与天然功能分子化学教育部重点实验室;西北大学分析科学研究所;

收稿日期: 2011-02-28

  修回日期: 2011-02-28

  网络出版日期: 2011-02-28

Electrocatalytic Oxidation of Hydrazine at Rutin Carbon Nanotubes Modified Electrode

  • ZHANG Hong-fang ,
  • SHENG Qing-lin ,
  • ZHENG Jian-bin
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  • (1.Key Laboratory of Synthetic and Natural Functional Molecule Chemistry of Ministry of Education, College of Chemistry & materials Science,Northwest University,Xi'an 710069,China; 2.Institute of Analytical Science,Northwest University,Xi'an 710069,China

Received date: 2011-02-28

  Revised date: 2011-02-28

  Online published: 2011-02-28

摘要

应用循环伏安法研究了芦丁碳纳米管修饰玻碳电极(Rt-MWNT/GC)的电化学行为及其对肼的电催化氧化.实验表明,该修饰电极能使肼的氧化电位降至260 mV附近,表现出良好的电催化作用.安培法测得催化电流与肼浓度在2.5×10-6~1.0×10-4 mol·L-1范围内呈线性关系,检出限5×10-7 mol.L-1.

本文引用格式

张宏芳 , 盛庆林 , 郑建斌 . 芦丁碳纳米管修饰玻碳电极电催化氧化肼的研究[J]. 电化学, 2011 , 17(1) : 107 -111 . DOI: 10.61558/2993-074X.2080

Abstract

The electrochemical behavior and electrocatalytic oxidation of hydrazine on rutin multiwall carbon nanotubes modified glassy carbon electrode were studied by cyclic voltammetry.The experimental results indicated that the electrode exhibits good electrocatalytic activity to hydrazine at a reduced oxidation potential of 262 mV.The amperometric response of the modified electrode showed linear increase after successive addition of hydrazine in the concentration range of 2.5×10-6~1.0×10-4 mol·L-1 with a detection limit of 5×10-7 mol·L-1.

参考文献

[1]Choudhary G,Hansen H.Human health prospective onenvironmental exposure to hydrazines:a review[J].Chemosphere,1998,37(2):801-843.

[2]Safavi A,Ensafi A A.Kinetic spectrophotometric deter-mination of hydrazine[J].Anal Chim Acta,1995,300(1/3):307-311.

[3]Zare A R.Cloud point formation based on mixed micellein the presence of electrolyte for extraction,preconcen-tration,and spectrophotometric determination of trace a-mounts of hydrazine in water and biological samples[J].Anal Biochem,2007,369(2):161-167.

[4]Chen X,Xiang Y,Li Z,et al.Sensitive and selective flu-orescence determination of trace hydrazine in aqueoussolution utilizing 5-chlorosalicylaldehyde[J].AnalChim Acta,2008,625(1):41-46.

[5]Mori M,Tanaka K,Xu Q,et al.Highly sensitive determi-nation of hydrazine ion by ion-exclusion chromatographywith ion-exchange enhancement of conductivity detec-tion[J].J Chromatogr A,2004,1039(1/2):135-139.

[6]Zheng J,Sheng Q,Li L,et al.Bismuth hexacyanoferrate-modified carbon ceramic electrodes prepared by electro-chemical deposition and its electrocatalytic activity to-wards oxidation of hydrazine[J].J Electroanal Chem,2007,611(1/2):155-161.

[7]Abbaspour A,Khajehzadeh A,Ghaffarinejad A.Electro-catalytic oxidation and determination of hydrazine onnickel hexacyanoferrate nanoparticles-modified carbonceramic electrode[J].J Electroanal Chem,2009,631(1/2):52-57.

[8]Perez E F,Oliveira N G,Tanaka A A,et al.Electro-chemical sensor for hydrazine based on silica modifiedwith nickel tetrasulfonated phthalocyanine[J].Electroa-nalysis,1998,10(2):111-115.

[9]Ardiles P,Trollund E,Isaacs M,et al.Electrocataltyicoxidation of hydrazine at polymeric iron-tetraaminoph-thalocyanine modified electrodes[J].J Mol Catal A:Chem,2001,165(1/2):169-175.

[10]Golabi S M,Zare H R.Electrocatalytic oxidation of hy-drazine at glassy carbon electrode modified with elec-trodeposited film derived from caffeic acid[J].Electro-analysis,1999,11(17):1293-1300.

[11]Golabi S M,Zare H R,Hamzehloo M.Electrocatalyticoxidation of hydrazine at a pyrocatechol violet(PCV)chemically modified electrode[J].Microchem J,2001,69(2):111-121.

[12]Zeng B,Wei S,Xiao F,et al.Voltammetric behaviorand determination of rutin at a single-walled carbonnanotubes modified gold electrode[J].Sens ActuatorsB,2006,115(1):240-246.

[13]Tang J L,Wu Z Y,Wang J G,et al.Electrocatalytic ox-idation of NADH by rutin in biomembrane-like films onglassy carbon electrode[J].Electrochem Commun,2000,2(2):796-799.

[14]Gooding J J.Nanostructuring electrodes with carbonnanotubes:a review on electrochemistry and applica-tions for sensing[J].Electrochim Acta,2005,50(15):3049-3060.

[15]Zhao Y D,Zhang W D,Chen H,et al.Anodic oxidationof hydrazine at carbon nanotube powder microelectrodeand its detection[J].Talanta,2002,58(3):529-534.

[16]Lawrence N S,Wang J.Chemical adsorption of phe-nothiazine dyes onto carbon nanotubes:toward the lowpotential detection of NADH[J].Electrochem Com-mun,2006,8(1):71-76.

[17]Jovanovic S V,Steeden S,Tosic M,et al.Flavonoids asantioxidants[J].J Am Chem Soc,1994,116:4846-4851.

[18]Zare H R,Nasirizadeh N.Hematoxylin multi-wall car-bon nanotubes modified glassy carbon electrode forelectrocatalytic oxidation of hydrazine[J].ElectrochimActa,2007,52(12):4153-4160.

[19]Salimi A,Miranzadeh L,Hallaj R.Amperometric andvoltammetric detection of hydrazine using glassy carbonelectrodes modified with carbon nanotubes and catecholderivatives[J].Talanta,2008,75(1):147-156.

[20]Zare H R,Nasirizadeh N.Electrocatalytic characteris-tics of hydrazine and hydroxylamine oxidation atcoumestan modified carbon paste electrode[J].Elec-troanalysis,2006,18(5):507-512.
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