Shearforce-Based Constant-Distance Scanning Electrochemical Microscopy as Fabrication Tool for Needle-Type Carbon-Fiber Nanoelectrodes

被引:13
作者
Hussien, Emad Mohamed [2 ]
Schuhmann, Wolfgang [2 ]
Schulte, Albert [1 ]
机构
[1] Suranaree Univ Technol, Sch Chem & Biochem, Inst Sci, Biochem Electrochem Res Unit, Nakhon Ratchasima 30000, Thailand
[2] Ruhr Univ Bochum, D-44780 Bochum, Germany
关键词
ELECTROPHORETIC DEPOSITION; TUNNELING-MICROSCOPY; TIPS; MICROELECTRODES; ELECTRODES; SECM; MODE;
D O I
10.1021/ac100738b
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Carbon fiber nanoelectrodes with nanometer radii tip curvatures were fabricated using a shearforce-based constant-distance scanning electrochemical microscope and electrochemically induced polymer deposition. A simple DC etching procedure in alkaline solution provided conically sharpened single carbon fibers with well-formed nanocones at their bottom. Coating the stems but not the end of the tips of the tapered structures with anodic electrodeposition paint was the strategy for limiting the bare carbon to the foremost end and restricting a feasible voltammetry current response to exactly this section. The electrodeposition of the polymer was prevented at the foremost end of the tip using a shearforce-based tip-to-sample distance control that allowed approaching the etched tips carefully in just touching distance to a film of a silicone elastomer. Analysis of the steady-state cyclic voltammograms in presence of a reversible redox compound revealed effective radii for the obtained needle-type carbon-fiber nanoelectrodes down to as small as 46 nm. The method offers an alternative pathway toward the fabrication of highly miniaturized carbon electrodes.
引用
收藏
页码:5900 / 5905
页数:6
相关论文
共 47 条
[1]   In Vitro Electrochemistry of Biological Systems [J].
Adams, Kelly L. ;
Puchades, Maja ;
Ewing, Andrew G. .
ANNUAL REVIEW OF ANALYTICAL CHEMISTRY, 2008, 1 :329-355
[2]   When voltammetry reaches nanoseconds [J].
Amatore, C ;
Maisonhaute, E .
ANALYTICAL CHEMISTRY, 2005, 77 (15) :303A-311A
[3]   Electrochemical monitoring of single cell secretion:: Vesicular exocytosis and oxidative stress [J].
Amatore, Christian ;
Arbault, Stephane ;
Guille, Manon ;
Lemaitre, Frederic .
CHEMICAL REVIEWS, 2008, 108 (07) :2585-2621
[4]   Scanning Electrochemical Microscopy [J].
Amemiya, Shigeru ;
Bard, Allen J. ;
Fan, Fu-Ren F. ;
Mirkin, Michael V. ;
Unwin, Patrick R. .
ANNUAL REVIEW OF ANALYTICAL CHEMISTRY, 2008, 1 (01) :95-131
[5]   EFFECTIVE INSULATION OF SCANNING-TUNNELING-MICROSCOPY TIPS FOR ELECTROCHEMICAL STUDIES USING AN ELECTROPAINTING METHOD [J].
BACH, CE ;
NICHOLS, RJ ;
BECKMANN, W ;
MEYER, H ;
SCHULTE, A ;
BESENHARD, JO ;
JANNAKOUDAKIS, PD .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1993, 140 (05) :1281-1284
[6]  
Bard A., 2001, Scanning Electrochemical Microscopy
[7]   An advanced biological scanning electrochemical microscope (Bio-SECM) for studying individual living cells [J].
Bauermann, LP ;
Schuhmann, W ;
Schulte, A .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2004, 6 (15) :4003-4008
[8]   Fabrication of carbon microelectrodes with an effective radius of 1 nm [J].
Chen, SL ;
Kucernak, A .
ELECTROCHEMISTRY COMMUNICATIONS, 2002, 4 (01) :80-85
[9]   The voltammetric response of nanometer-sized carbon electrodes [J].
Chen, SL ;
Kucernak, A .
JOURNAL OF PHYSICAL CHEMISTRY B, 2002, 106 (36) :9396-9404
[10]  
Chow Robert H., 1995, P245