Effect of Carbon Nanotubes on Direct Electron Transfer and Electrocatalytic Activity of Immobilized Glucose Oxidase
Влияние углеродных нанотрубок на прямой перенос электронов и электрокаталитическую активность иммобилизованной глюкозооксидазы
2018-01-19
SCID: 54.1/m6ngchxv
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carbon nanotubesdirect electron transferelectrocatalytic activityglucose biosensorsglucose oxidase
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Abstract (AI)
High Resolution Image Download MS PowerPoint Slide Carbon nanotubes (CNTs) are excellent supports for electrocatalysts because of their large surface area, excellent electronic conductivity, and high chemical and structural stability. In the present study, the activity of CNTs on direct electron transfer (DET) and on immobilized glucose oxidase (GO X ) is studied as a function of number of walls of CNTs. The results indicate that the GO X immobilized by the CNTs maintains its electrocatalytic activity toward glucose; however, the DET and electrocatalytic activity of GO X depend strongly on the number of inner tubes of CNTs. The GO X immobilized on triple-walled CNTs (TWNTs) has the highest electron-transfer rate constant, 1.22 s –1, for DET, the highest sensitivity toward glucose detection, 66.11 ± 5.06 μA mM –1 cm –2, and the lowest apparent Michaelis–Menten constant, 6.53 ± 0.58 mM, as compared to GO X immobilized on single-walled and multiwalled CNTs. The promotion effect of CNTs on the GO X electrocatalytic activity and DET is most likely due to the electron-tunneling effect between the outer wall and inner tubes of TWNTs. The results of this study have general implications for the fundamental understanding of the role of CNT supports in DET processes and can be used for the better design of more effective electrocatalysts for biological processes including biofuel cells and biosensors.
Key Findings
1
CNTs preserve the electrocatalytic activity of immobilized glucose oxidase toward glucose, while DET and catalytic performance depend strongly on CNT wall number.
2
Glucose oxidase immobilized on triple-walled CNTs achieved the highest DET electron-transfer rate constant, 1.22 s−1.
3
The enhanced DET and electrocatalytic activity are most likely attributed to electron tunneling between the outer wall and inner tubes of triple-walled CNTs, informing electrocatalyst design for biosensors and biofuel cells.
4
Triple-walled CNTs produced the highest glucose-detection sensitivity, 66.11 ± 5.06 μA mM−1 cm−2, among the tested CNT types.
5
Triple-walled CNTs yielded the lowest apparent Michaelis–Menten constant, 6.53 ± 0.58 mM, indicating the most favorable apparent glucose kinetics.
Research Object
Glucose oxidase immobilized on carbon nanotubes with different numbers of walls
Research Subject
The dependence of direct electron-transfer rate and electrocatalytic activity toward glucose on the number of carbon-nanotube walls, including sensitivity and apparent Michaelis–Menten kinetics
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2018-01-19
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