Electrolysis in nanochannels for in situ reagent generation in confined geometries

被引:27
作者
Contento, Nicholas M. [1 ]
Branagan, Sean P. [1 ]
Bohn, Paul W. [1 ,2 ]
机构
[1] Univ Notre Dame, Dept Chem & Biomol Engn, Notre Dame, IN 46556 USA
[2] Univ Notre Dame, Dept Chem & Biochem, Notre Dame, IN 46556 USA
基金
美国国家科学基金会;
关键词
CAPILLARY-ELECTROPHORESIS MICROCHIP; CHANNEL MICROBAND ELECTRODES; STEADY-STATE; ELECTROCHEMICAL DETECTION; NANOPORE ELECTRODE; PH GRADIENTS; POLY(DIMETHYLSILOXANE); REDUCTION; DETECTOR; SYSTEMS;
D O I
10.1039/c1lc20570f
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
In situ generation of reactive species within confined geometries, such as nanopores or nanochannels is of significant interest in overcoming mass transport limitations in chemical reactivity. Solvent electrolysis is a simple process that can readily be coupled to nanochannels for the electrochemical generation of reactive species, such as H(2). Here the production of hydrogen-rich liquid volumes within nanofluidic structures, without bubble nucleation or nanochannel occlusion, is explored both experimentally and by modeling. Devices comprised of multiple horizontal nanochannels intersecting planar working and quasi-reference electrodes were constructed and used to study the effects of confinement and reduced working volume on the electrochemical reduction of H(2)O to H(2) and OH(-). H(2) production in the nanochannel-embedded electrode reactor output was monitored by fluorescence emission of fluorescein, which exhibits a pH-dependent emission intensity. Initially, the fluorescein solution was buffered to pH 6.0 prior to stepping the potential cathodic of E(0)' for the generation of OH(-) and H(2). Because the electrochemical products are obtained in a 2 : 1 stoichiometry, local measurements of pH during and after the cathodic potential steps can be converted into H(2) production rates. Independent experimental estimates of the local H(2) concentration were then obtained from the spatiotemporal fluorescence behavior and current measurements, and these were compared with finite element simulations accounting for electrolysis and subsequent convection and diffusion within the confined geometry. Local dissolved H(2) concentrations were correlated to partial pressures through Henry's Law and values as large as 8.3 atm were obtained at the most negative potential steps. The downstream availability of electrolytically produced H(2) in nanochannels is evaluated in terms of its possible use as a downstream reducing reagent. The results obtained here indicate that H(2) can easily reach saturation concentrations at modest overpotentials.
引用
收藏
页码:3634 / 3641
页数:8
相关论文
共 42 条
[1]   Theory and Experiments of Transport at Channel Microband Electrodes under Laminar Flows. 2. Electrochemical Regimes at Double Microband Assemblies under Steady State [J].
Amatore, Christian ;
Da Mota, Nicolas ;
Lemmer, Celia ;
Pebay, Cecile ;
Sella, Catherine ;
Thouin, Laurent .
ANALYTICAL CHEMISTRY, 2008, 80 (24) :9483-9490
[2]  
[Anonymous], 2001, ELECTROCHEMICAL METH
[3]   Nanoelectrodes, nanoelectrode arrays and their applications [J].
Arrigan, DWM .
ANALYST, 2004, 129 (12) :1157-1165
[4]   Microfabricated on-chip integrated Au-Ag-Au three-electrode system for in situ mercury ion determination [J].
Chen, Chaogui ;
Zhang, Jichao ;
Du, Yan ;
Yang, Xiurong ;
Wang, Erkang .
ANALYST, 2010, 135 (05) :1010-1014
[5]   Hollow platinum spheres with nano-channels: Synthesis and enhanced catalysis for oxygen reduction [J].
Chen, Hao Ming ;
Liu, Ru-Shi ;
Lo, Man-Yin ;
Chang, Sung-Chun ;
Tsai, Li-Duan ;
Peng, Yu-Min ;
Lee, Jyh-Fu .
JOURNAL OF PHYSICAL CHEMISTRY C, 2008, 112 (20) :7522-7526
[6]   HYDRODYNAMIC VOLTAMMETRY WITH MICROELECTRODES - CHANNEL MICROBAND ELECTRODES - THEORY AND EXPERIMENT [J].
COMPTON, RG ;
FISHER, AC ;
WELLINGTON, RG ;
DOBSON, PJ ;
LEIGH, PA .
JOURNAL OF PHYSICAL CHEMISTRY, 1993, 97 (40) :10410-10415
[7]  
GODINO N, 2007, P COMSOL US C 2007 G
[8]   Catalytic Nitrate and Nitrite Reduction with Pd-Cu/PVP Colloids in Water: Composition, Structure, and Reactivity Correlations [J].
Guy, Kathryn A. ;
Xu, Huiping ;
Yang, Judith C. ;
Werth, Charles J. ;
Shapley, John R. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2009, 113 (19) :8177-8185
[9]   Electrode array detector for microchip capillary electrophoresis [J].
Holcomb, Ryan E. ;
Kraly, James R. ;
Henry, Charles S. .
ANALYST, 2009, 134 (03) :486-492
[10]   Induced electrokinetic transport in micro-nanofluidic interconnect devices [J].
Jin, Xiaozhong ;
Joseph, Sony ;
Gatimu, Enid N. ;
Bohn, Paul W. ;
Aluru, N. R. .
LANGMUIR, 2007, 23 (26) :13209-13222