Characterization of Carbon Nanofiber Electrode Arrays Using Electrochemical Impedance Spectroscopy: Effect of Scaling Down Electrode Size

被引:69
作者
Siddiqui, Shabnam [1 ]
Arumugam, Prabhu U. [1 ]
Chen, Hua [1 ]
Li, Jun [1 ]
Meyyappan, M. [1 ]
机构
[1] NASA, Ames Res Ctr, Moffett Field, CA 94035 USA
关键词
carbon nanofibers; electrochemical impedance spectroscopy; nanoelectrode array; ultrasensitive nucleic acid detection; biosensor; linearity; NANOELECTRODE ARRAYS; LABEL-FREE; FABRICATION;
D O I
10.1021/nn901583u
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We report here how the electrochemical impedance spectra change as (i) electrode size is reduced to nanometer scale and (ii) spacing between vertically aligned carbon nanofiber (VACNF) electrodes is varied. To study this, we used three types of electrodes: standard microdisks (100 mu m Pt, 10 mu m Au, and 7 mu m glassy carbon), randomly grown (RG) VACNFs where spacing between electrodes is not fixed, and electron beam patterned VACNF nanoelectrode arrays (pNEAs) where electrode spacing is fixed at 1 mu m. As the size of the microdisk electrode is reduced, the spectrum changed from a straight line to a semicircle accompanied by huge noise. Although a semicircle spectrum can directly indicate the electron transfer resistance (R-ct) and thus is useful for biosensing applications, the noise from electrodes, particularly from those with diameters <= 10 mu m, limits sensitivity. In the case of VACNFs, the electrode spacing controls the type of spectrum, that is, a straight line for RG VACNFs and a semicircle for pNEAs. In contrast to microdisks, pNEAs showed almost insignificant noise even at small perturbations (10 mV). Second, only pNEAs showed linearity as the amplitude of the sinusoidal signal was increased from 10 to 100 mV. The ability to apply large amplitudes reduces the stochastic errors, provides high stability, and improves signal-to-noise (S/N) ratio. This new class of nanoelectrochemical system using carbon pNEAs offers unique properties such as semicircle spectra that fit into simple circuits, high S/N ratio, linearity, and tailor-made spectra for specific applications by controlling electrode size, spacing, and array size.
引用
收藏
页码:955 / 961
页数:7
相关论文
共 22 条
[1]   Wafer-scale fabrication of patterned carbon nanofiber nanoelectrode arrays: A route for development of multiplexed, ultrasensitive disposable biosensors [J].
Arumugam, Prabhu U. ;
Chen, Hua ;
Siddiqui, Shabnam ;
Weinrich, Jarret A. P. ;
Jejelowo, Ayodeji ;
Li, Jun ;
Meyyappan, M. .
BIOSENSORS & BIOELECTRONICS, 2009, 24 (09) :2818-2824
[2]   Significance of small voltage in impedance spectroscopy measurements on electrolytic cells [J].
Barbero, G ;
Alexe-Ionescu, AL ;
Lelidis, I .
JOURNAL OF APPLIED PHYSICS, 2005, 98 (11)
[3]  
Bard AJ., 2001, ELECTROCHEMICAL METH, V2nd, P368
[4]   ELECTROCHEMICAL IMPEDANCE SPECTROSCOPY AT AN ULTRAMICROELECTRODE [J].
BRUCE, PG ;
LISOWSKAOLEKSIAK, A ;
LOS, P ;
VINCENT, CA .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1994, 367 (1-2) :279-283
[5]   Label-free impedance biosensors: Opportunities and challenges [J].
Daniels, Jonathan S. ;
Pourmand, Nader .
ELECTROANALYSIS, 2007, 19 (12) :1239-1257
[6]   THE AMPLITUDE ANALYSIS OF IMPEDANCE SPECTRA [J].
DAROWICKI, K .
ELECTROCHIMICA ACTA, 1995, 40 (04) :439-445
[7]   Electrical impedance for an electrolytic cell [J].
Freire, F. C. M. ;
Barbero, G. ;
Scalerandi, M. .
PHYSICAL REVIEW E, 2006, 73 (05)
[8]   Electrochemical impedance behavior of DNA biosensor based on colloidal Ag and bilayer two-dimensional sol-gel as matrices [J].
Fu, YZ ;
Yuan, R ;
Xu, L ;
Chai, YQ ;
Liu, Y ;
Tang, DP ;
Zhang, Y .
JOURNAL OF BIOCHEMICAL AND BIOPHYSICAL METHODS, 2005, 62 (02) :163-174
[9]   Impedimetric biosensors [J].
Guan, JG ;
Miao, YQ ;
Zhang, QJ .
JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2004, 97 (04) :219-226
[10]   ELECTRON-TRANSFER KINETICS OF FE(CN)63-/4- ON LASER-ACTIVATED AND CN- -MODIFIED PT ELECTRODES [J].
HUANG, WH ;
MCCREERY, R .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1992, 326 (1-2) :1-12