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尿酸在化学组装的羧基化单壁碳纳米管网状电极上的直接电化学

Direct electrochemistry of uric acid at chemically assembled carboxylated single-walled carbon nanotubes netlike electrode.

作者信息

Huang Xing-Jiu, Im Hyung-Soon, Yarimaga Oktay, Kim Ju-Hyun, Lee Do-Hoon, Kim Hak-Sung, Choi Yang-Kyu

机构信息

Nano-Bio-Electronic Lab, Department of Electrical Engineering and Computer Science, Korea Advanced Institute of Science and Technology, 373-1 Guseong-dong, Yuseong-gu, Daejeon, South Korea.

出版信息

J Phys Chem B. 2006 Nov 2;110(43):21850-6. doi: 10.1021/jp063749q.

Abstract

Carboxylated single-walled carbon nanotubes (SWCNT) chemically assembled on gold substrate was employed as netlike electrode to investigate the charge-transfer process and electrode process kinetics using uric acid as an example. The electrochemical behavior of uric acid in carboxylated SWCNT system was investigated using cyclic voltammetry, chronoamperometry, and single potential time-based techniques. The properties of raw SWCNT electrode were also studied for comparison purpose. Uric acid has better electrochemical behavior whereas ascorbic acid has no effective reaction on the carboxylated SWCNT electrode. Cyclic voltammograms indicate that the assembled carboxylated SWCNT increases more active sites on electrode surface and slows down the electron transfer between the gold electrode and uric acid in solution. The charge-transfer coefficient (alpha) for uric acid and the rate constant (k) for the catalytic reaction were calculated as 0.52 and 0.43 s(-1), respectively. The diffusion coefficient of 0.5 mM uric acid was 7.5 x 10(-6) cm2 x s(-1). The results indicate that electrode process in the carboxylated SWCNT electrode system is governed by the surface adsorption-controlled electrochemical process.

摘要

将化学组装在金基底上的羧基化单壁碳纳米管(SWCNT)用作网状电极,以尿酸为例研究电荷转移过程和电极过程动力学。采用循环伏安法、计时电流法和基于单电位时间的技术研究了尿酸在羧基化SWCNT体系中的电化学行为。为作比较,还研究了原始SWCNT电极的性能。尿酸具有较好的电化学行为,而抗坏血酸在羧基化SWCNT电极上没有有效反应。循环伏安图表明,组装的羧基化SWCNT增加了电极表面的活性位点,并减缓了金电极与溶液中尿酸之间的电子转移。计算得出尿酸的电荷转移系数(α)和催化反应的速率常数(k)分别为0.52和0.43 s⁻¹。0.5 mM尿酸的扩散系数为7.5×10⁻⁶ cm²·s⁻¹。结果表明,羧基化SWCNT电极体系中的电极过程受表面吸附控制的电化学过程支配。

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