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Chemical and Biosensors

Carbon Nanotubes‐Modified Screen‐Printed Electrodes for Chemical Sensors and Biosensors

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Pages 3185-3204 | Received 19 Aug 2004, Accepted 30 Aug 2004, Published online: 22 Aug 2007

References

  • Dai , H. J. 2002 . Carbon nanotubes: Synthesis, integration, and properties . Acc. Chem. Res. , 35 : 1035
  • Shim , M. , Javey , A. , Kam , N. M.S. and Dai , H. 2001 . Polymer functionalization for air‐stable n‐type carbon nanotubes field‐effect tansistors . J. Am. Chem. Soc. , 123 : 11512
  • Chen , R. , Zhang , Y.G. , Wang , D. and Dai , H.J. 2001 . Noncovalent sidewall functionalization of single‐walled carbon nanotubes for protein immobilization . J. Am. Chem. Soc. , 123 : 3838
  • Zhao , Q. , Gan , Z. and Zhuabg , Q.K. 2002 . Electrochemical sensor based on carbon nanotubes . Electroanalysis , 14 : 1609
  • Britto , P. J. , Santhanam , K. S.V. and Ajayan , P. M. 1996 . Bioelectrochem. Bioenerg. , 41 : 121
  • Britto , J. P. , Santham , K. S.V. , Rubio , A. , Alonso , J. A. and Ajayan , P. M. 1999 . Improved charge transfer at carbon nanotube electrodes . Adv. Mater. , 11 : 154
  • Luo , H. , Shi , Z. , Li , N. , Ga , Z. and Zhuang , Q. 2001 . Investigation of the electrochemical and electrocatalytic behavior of single‐wall carbon nanotube film on a glassy carbon electrode . Anal. Chem. , 73 : 915
  • Wu , K. , Sun , Y. and Hu , S. 2003 . Development of an amperometric indole‐3‐acetic acid sensor based on carbon nanotubes film coated glassy carbon electrode . Sens. Actuat. B , 96 : 658
  • Chen , R. S. , Huang , W. H. , Tong , H. , Wang , Z. L. and Cheng , J. K. 2003 . Carbon fiber nanoelectrodes modified by single‐walled carbon nanotubes . Anal. Chem. , 75 : 6341
  • Ye , J. S. , Wen , Y. , Zhang , W. D. , Gan , L. M. , Xu , G. Q. and Shen , F. S. 2003 . Selective voltammetric detection of uric acid in the presence of ascorbic acid at well‐aligned carbon nanotube electrode . Electroanalysis , 15 : 1693
  • Rubianes , M. D. and Rivas , G. A. 2003 . Carbon nanotubes paste electrode . Electrochem. Commun. , 5 : 689
  • Vakentini , F. , Amine , A. , Orlanducci , S. , Terranova , M. L. and Palleschi , G. 2003 . Carbon nanotube purification: Preparation and characterization of carbon nanotube paste electrodes . Anal. Chem. , 75 : 5413
  • Xu , J. Z. , Zhu , J. J. , Wu , Q. , Hu , Z. and Chen , H. Y. 2003 . An amperometric biosensor based on the coimmobilization of horseradish peroxidase and methylene blue on a carbon nanotubes modified electrode . Electroanalysis , 15 : 219
  • Xue , H.G. , Sun , W.L. , He , B.J. and Shen , Z.Q. 2003 . Single‐wall carbon nanotubes as immobilization material for glucose biosensor . Synth. Metals , 135 : 831
  • Yu , X. , Chattopadhyay , D. , Galeska , I. , Papadimitrakopoulos , F. and Rusling , J.F. 2003 . Peroxidase activity of enzymes bound to the ends of single‐wall carbon nanotubes forest electrodes . Electrochem. Commun. , 5 : 408 – 411 .
  • Wohlstadter , J. N. , Wilbur , J. L. , Sigal , G. B. , Biebuyck , H. A. and Billadeau , M. A. 2003 . Carbon nanotubes‐based biosensor . Adv. Materials , 15 : 1184
  • Gao , M. , Dai , L. and Wallace , G. G. 2003 . Biosensors based on aligned carbon nanotubes coated with inherently conducting polymers . Electroanalysis , 15 : 1089
  • Laschi , S. , Franek , M. and Mascini , M. 2000 . Screen‐printed electrochemical immunosensors for PCB detection . Electroanalysis , 12 : 1293
  • Wang , J. , Pedrero , M. , Sakslumnd , H. , Hammerich , O. and Pingarron , J. 1996 . Electrochemical activation of screen‐printed carbon strips . Analyst , 121 : 345
  • Grennan , K. , Killard , A. J. and Smyth , M. R. 2001 . Physical characterizations of a screen‐printed electrode for use in an amperometric biosensor system . Electroanalysis , 13 : 745
  • Killard , A. J. , Zhang , S. , Zhao , H. , John , R. , Iwuoha , E. I. and Smyth , M. R. 1999 . Development of an electrochemical flow injection immunoassay (FIIA) for the real‐time monitoring of biospecific interactions . Anal. Chim. Acta , 400 : 109
  • Moorrin , A. , Killard , A. J. and Smyth , M. R. 2003 . Electrochemical characterization of commerical and home‐made screen‐print carbon electrodes . Anal. Lett. , 36 : 2021
  • Dumas , D. P. , Durst , H. D. , Wild , J. R. and Raushel , F. M. 1990 . Inactivation of organophosphorus nerve agents by the phosphotriesterase from pseudomonas diminuta . Arch. Biochem. Biophys. , 277 : 155
  • Mulchandani , A. , Chen , W. , Mulchandani , P. , Wang , J. and Rogers , K. R. 2001 . Biosensors for direct determination of organophosphate pesticides . Biosens. Bioelectron. , 16 : 225
  • Wang , J. , Krause , R. , Block , K. , Musameh , M. , Mulchandani , A. , Mulchandani , P. , Chen , W. and Schőning , M. J. 2002 . Dual amperometric‐potentiometric biosensor detection system for monitoring organophosphorus neurotoxins . Anal. Chim. Acta , 469 : 197
  • Wang , J. , Krause , R. , Block , K. , Musameh , M. , Mulchandani , A. and Schőning , M. J. 2003 . Flow injection amperometric detection of OP nerve agents based on an organophosphorus‐hydrolase biosensor detector . Biosens. Bioelectron. , 18 : 255
  • Schőning , M. J. , Arzdorf , M. , Mulchandani , P. , Chen , W. and Mulchandani , A. 2003 . A capacitive field‐effect sensor for the direct determination of organophosphorus pesticides . Sens. Actuat. B , 91 : 92
  • Hart , J.P. , Abass , A. K. and Cowell , D. 2002 . Development of disposable amperometric sulfur dioxide biosensors based on screen printed electrodes . Biosens. Bioelectron. , 17 : 389
  • Mulchandani , A. , Mulchandani , P. , Chen , W. and Chen , L. 1999 . Amperometric thick‐film strip electrodes for monitoring organophosphate nerve agents based on immobilized organophosphorus hydrolase . Anal. Chem. , 71 : 2246
  • Fernandez Romero , J. M. , Stiene , M. , Kast , R. , Luque de Castro , M. D. and Bilitewski , U. 1998 . Application of screen‐printed electrodes as transducers in affinity flow‐through sensor systems . Biosens. Bioelectron. , 13 : 1107
  • Bonnet , C. , Andreescu , S. and Marty , J. L. 2003 . Adsorption: an easy and efficient immobilization of acetylcholinesterase on screen‐printed electrodes . Anal. Chim. Acta , 481 : 209
  • Nicholson , R. S. and Shain , I. 1965 . Experimental verification of an ECE mechanism for the reduction of p‐nitrosophenol, using stationary electrode polarography . Anal. Chem. , 37 : 190
  • Omburo , G. A. , Kuo , J. M. , Mullins , L. S. and Raushel , F. M. 1992 . Characterization of the zinc binding site of bacterial phosphotriesterase . J. Biol. Chem. , 267 : 13278
  • Kolakowski , J. E. , Defrank , J. J. , Harvey , S. P. , Szafraniec , L. L. , Beaurdy , W. T. , Lai , K. and Wild , J. R. 1997 . Enzymatic hydrolysis of the chemical warfare agent VX and its neurotoxic analogues by organophosphorus hydrolase . Biocatal. Biotransform. , 15 : 297
  • Casella , I. G. 1995 . Platinum glassy‐carbon electrode as detector for liquid‐chromatographic determination of hydroxyl‐containing compounds . Anal. Chim. Acta , 311 : 37
  • Hayes , E. T. , Bellingham , B. K. , Mark , H. B. Jr. and Galal , A. 1996 . An amperometric aqueous ethanol sensor based on the electrocatalytic oxidation at a cobalt‐nickel oxide electrode . Electrochim. Acta , 41 : 337
  • Jafarian , M. , Mahjani , M. G. , Heli , H. , Gobal , F. , Khajehsharifi , H. and Hamedi , M. H. 2003 . A study of the electro‐catalytic oxidation of methanol on a cobalt hydroxide modified glassy carbon electrode . Electrochim. Acta , 48 : 3423
  • Wang , J. and Musameh , M. 2004 . Carbon nanotube screen‐printed electrochemical sensors . Analyst , 129 : 1
  • Wang , J. , Chen , G. , Chatrahti , M. P. and Musameh , M. 2004 . Capillary electrophoresis microchip with a carbon nanotube‐modified electrochemical detector . Anal. Chem. , 776 : 298
  • Lin , Y. , Lu , F. and Wang , J. 2004 . Disposable carbon nanotube modified screen‐printed biosensor for amperometric detection of organophosphorus pesticides and nerve agents . Electroanalysis , 16 : 145

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