Electrochemistry at single molecule occupancy in nanopore-confined recessed ring-disk electrode arrays

被引:29
作者
Fu, Kaiyu [1 ]
Han, Donghoon [2 ]
Ma, Chaoxiong [1 ]
Bohn, Paul W. [1 ,2 ]
机构
[1] Univ Notre Dame, Dept Chem & Biochem, Notre Dame, IN 46556 USA
[2] Univ Notre Dame, Dept Biomol & Chem Engn, Notre Dame, IN 46556 USA
基金
美国国家科学基金会;
关键词
NANOELECTRODE ARRAYS; NANOSCALE ELECTROCHEMISTRY; NANOSPHERE LITHOGRAPHY; FABRICATION; SIMULATION; ENSEMBLES; CELLS; BEAM; NM;
D O I
10.1039/c6fd00062b
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Electrochemical reactions at nanoscale structures possess unique characteristics, e.g. fast mass transport, high signal-to-noise ratio at low concentration, and insignificant ohmic losses even at low electrolyte concentrations. These properties motivate the fabrication of high density, laterally ordered arrays of nanopores, embedding vertically stacked metal-insulator-metal electrode structures and exhibiting precisely controlled pore size and interpore spacing for use in redox cycling. These nanoscale recessed ring-disk electrode (RRDE) arrays exhibit current amplification factors, AFRC, as large as 55-fold with Ru(NH3)(6)(2/3+), indicative of capture efficiencies at the top and bottom electrodes, Phi(t,b,) exceeding 99%. Finite element simulations performed to investigate the concentration distribution of redox species and to assess operating characteristics are in excellent agreement with experiment. AF(RC) increases as the pore diameter, at constant pore spacing, increases in the range 200-500 nm and as the pore spacing, at constant pore diameter, decreases in the range 1000-460 nm. Optimized nanoscale RRDE arrays exhibit a linear current response with concentration ranging from 0.1 mu M to 10 mM and a small capacitive current with scan rate up to 100 V s(-1). At the lowest concentrations, the average pore occupancy is hni similar to 0.13 molecule establishing productive electrochemical signals at occupancies at and below the single molecule level in these nanoscale RRDE arrays.
引用
收藏
页码:51 / 64
页数:14
相关论文
共 41 条
[1]   Nanoelectrodes, nanoelectrode arrays and their applications [J].
Arrigan, DWM .
ANALYST, 2004, 129 (12) :1157-1165
[2]   Electrochemical detection of single molecules [J].
Bard, AJ ;
Fan, FRF .
ACCOUNTS OF CHEMICAL RESEARCH, 1996, 29 (12) :572-578
[3]   DIGITAL-SIMULATION OF THE MEASURED ELECTROCHEMICAL RESPONSE OF REVERSIBLE REDOX COUPLES AT MICROELECTRODE ARRAYS - CONSEQUENCES ARISING FROM CLOSELY SPACED ULTRAMICROELECTRODES [J].
BARD, AJ ;
CRAYSTON, JA ;
KITTLESEN, GP ;
SHEA, TV ;
WRIGHTON, MS .
ANALYTICAL CHEMISTRY, 1986, 58 (11) :2321-2331
[4]   Generator-collector double electrode systems: A review [J].
Barnes, Edward O. ;
Lewis, Grace E. M. ;
Dale, Sara E. C. ;
Marken, Frank ;
Compton, Richard G. .
ANALYST, 2012, 137 (05) :1068-1081
[5]   A COMPARISON OF THE CHRONOAMPEROMETRIC RESPONSE AT INLAID AND RECESSED DISK MICROELECTRODES [J].
BOND, AM ;
LUSCOMBE, D ;
OLDHAM, KB ;
ZOSKI, CG .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1988, 249 (1-2) :1-14
[6]   UNRAVELING REACTIONS WITH ROTATING ELECTRODES [J].
BRUCKENSTEIN, S ;
MILLER, B .
ACCOUNTS OF CHEMICAL RESEARCH, 1977, 10 (02) :54-61
[7]   Colloid chemical approach to nanoelectrode ensembles with highly controllable active area fraction [J].
Cheng, WL ;
Dong, SJ ;
Wang, EK .
ANALYTICAL CHEMISTRY, 2002, 74 (15) :3599-3604
[8]   Nanoelectrodes: Recent Advances and New Directions [J].
Cox, Jonathan T. ;
Zhang, Bo .
ANNUAL REVIEW OF ANALYTICAL CHEMISTRY, VOL 5, 2012, 5 :253-272
[9]   Electroanalysis at the Nanoscale [J].
Dawson, Karen ;
O'Riordan, Alan .
ANNUAL REVIEW OF ANALYTICAL CHEMISTRY, VOL 7, 2014, 7 :163-+
[10]   Single molecule electrochemistry [J].
Fan, FRF ;
Kwak, J ;
Bard, AJ .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1996, 118 (40) :9669-9675