Electrochemical tailoring of lamellar-structured ZnO films by interfacial surfactant templating

被引:64
作者
Tan, YW [1 ]
Steinmiller, EMP [1 ]
Choi, KS [1 ]
机构
[1] Purdue Univ, Dept Chem, W Lafayette, IN 47907 USA
关键词
D O I
10.1021/la050789x
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Zinc oxide films with ordered lamellar structures can be electrochemically produced by interfacial surfactant templating. This method utilizes amphiphile assemblies at the solid-liquid interface (i.e., the surface of a working electrode) as a template to electrodeposit inorganic nanostructures. To gain the ability to precisely tailor inorganic lamellar structures, the effect of various chemical and electrochemical parameters on the repeat distances, homogeneity, orientation, and quality of the interfacial amphiphilic bilayers were investigated. Surfactants with anionic headgroups (e.g., 1-hexadecanesulfonate sodium salt, dodecylbenzenesulfonate sodium salt, dioctyl sulfosuccinate sodium salt, mono-dodecyl phosphate, and sodium dodecyl sulfate) are critical because they incorporate Zn2+ ions into their bilayer assemblies as counterions and guide the lamellar growth of ZnO films. Unlike surfactant structures in solution, the interfacial surfactant assemblies are insensitive to the surfactant concentration in solution. The use of organic cosolvents (e.g., ethylene glycol, dimethyl sulfoxide) can increase the homogeneity of bilayer assemblies when multiple repeat distances are possible in a pure aqueous medium. In addition, organic cosolvents can make the interfacial structure responsive to the change in bulk surfactant concentrations. The presence of quaternary alkylammonium salts (e.g., cetyltrimethylammonium bromide) as cationic cosurfactants improves the ordering of anionic bilayers significantly. Consequently, it also affects the orientation of lamellar structures relative to the substrate as well as the surface texture of the films. The quality of lamellar structures incorporated in ZnO films is also dependent on the deposition potentials that determine deposition rates. A higher degree of ordering is achieved when a slower deposition rate (I < 0.15 mA/cm(2)) is used. The results described here will provide a useful foundation to design and optimize synthetic conditions for the electrochemical construction of broader types of inorganic nanostructures.
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页码:9618 / 9624
页数:7
相关论文
共 48 条
[1]   General predictive syntheses of cubic, hexagonal, and lamellar silica and titania mesostructured thin films [J].
Alberius, PCA ;
Frindell, KL ;
Hayward, RC ;
Kramer, EJ ;
Stucky, GD ;
Chmelka, BF .
CHEMISTRY OF MATERIALS, 2002, 14 (08) :3284-3294
[2]  
Andersson M, 1998, INT ENVIRON AFFAIR, V10, P3
[3]   Mesoporous platinum films from lyotropic liquid crystalline phases [J].
Attard, GS ;
Bartlett, PN ;
Coleman, NRB ;
Elliott, JM ;
Owen, JR ;
Wang, JH .
SCIENCE, 1997, 278 (5339) :838-840
[4]   Mesoporous Pt/Ru alloy from the hexagonal lyotropic liquid crystalline phase of a nonionic surfactant [J].
Attard, GS ;
Leclerc, SAA ;
Maniguet, S ;
Russell, AE ;
Nandhakumar, I ;
Bartlett, PN .
CHEMISTRY OF MATERIALS, 2001, 13 (05) :1444-+
[5]   Methanol fuel cell model: Anode [J].
Baxter, SF ;
Battaglia, VS ;
White, RE .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1999, 146 (02) :437-447
[6]  
Brodd R. J., 1985, STANDARD POTENTIALS, P249
[7]   Direct visualization of the potential-controlled transformation of hemimicellar aggregates of dodecyl sulfate into a condensed monolayer at the Au(111) electrode surface [J].
Burgess, I ;
Jeffrey, CA ;
Cai, X ;
Szymanski, G ;
Galus, Z ;
Lipkowski, J .
LANGMUIR, 1999, 15 (08) :2607-2616
[8]   Effect of the nature of the templating surfactant on the synthesis and structure of mesoporous V-Mg-O [J].
Chao, ZS ;
Ruckenstein, E .
LANGMUIR, 2002, 18 (03) :734-743
[9]   Electrochemical synthesis of nanostructured ZnO films utilizing self-assembly of surfactant molecules at solid-liquid interfaces [J].
Choi, KS ;
Lichtenegger, HC ;
Stucky, GD ;
McFarland, EW .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2002, 124 (42) :12402-12403
[10]   Ordered mesoporous materials [J].
Ciesla, U ;
Schüth, F .
MICROPOROUS AND MESOPOROUS MATERIALS, 1999, 27 (2-3) :131-149