Catalytically induced electrokinetics for motors and micropumps

被引:365
作者
Paxton, Walter F. [1 ]
Baker, Paul T. [1 ]
Kline, Timothy R. [1 ]
Wang, Yang [1 ]
Mallouk, Thomas E. [1 ]
Sen, Ayusman [1 ]
机构
[1] Penn State Univ, Dept Chem, University Pk, PA 16802 USA
关键词
D O I
10.1021/ja0643164
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We have explored the role of electrokinetics in the spontaneous motion of platinum-gold nanorods suspended in hydrogen peroxide (H2O2) solutions that may arise from the bimetallic electrochemical decomposition of H2O2. The electrochemical decomposition pathway was confirmed by measuring the steady-state short-circuit current between platinum and gold interdigitated microelectrodes (IMEs) in the presence of H2O2. The resulting ion flux from platinum to gold implies an electric field in the surrounding solution that can be estimated from Ohm's Law. This catalytically generated electric field could in principle bring about electrokinetic effects that scale with the Helmholtz-Smoluchowski equation. Accordingly, we observed a linear relationship between bimetallic rod speed and the resistivity of the bulk solution. Previous observations relating a decrease in speed to an increase in ethanol concentration can be explained in terms of a decrease in current density caused by the presence of ethanol. Furthermore, we found that the catalytically generated electric field in the solution near a Pt/Au IME in the presence of H2O2 is capable of inducing electroosmotic fluid flow that can be switched on and off externally. We demonstrate that the velocity of the fluid flow in the plane of the IME is a function of the electric field, whether catalytically generated or applied from an external current source. Our findings indicate that the motion of PtAu nanorods in H2O2 is primarily due to a catalytically induced electrokinetic phenomenon and that other mechanisms, such as those related to interfacial tension gradients, play at best a minor role.
引用
收藏
页码:14881 / 14888
页数:8
相关论文
共 33 条
[1]  
ADJARI A, 2006, PHYS REV LETT, V96, P6102
[2]  
ANDERSON JL, 1989, ANNU REV FLUID MECH, V21, P61
[3]  
[Anonymous], FUNDAMENTALS INTERFA
[4]  
Bianchi G., 1962, ELECTROCHIM ACTA, V7, P457, DOI 10.1016/0013-4686(62)80034-6
[5]   Motility of ActA protein-coated microspheres driven by actin polymerization [J].
Cameron, LA ;
Footer, MJ ;
van Oudenaarden, A ;
Theriot, JA .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (09) :4908-4913
[6]   Directed rotational motion of microscale objects using interfacial tension gradients continually generated via catalytic reactions [J].
Catchmark, JM ;
Subramanian, S ;
Sen, A .
SMALL, 2005, 1 (02) :202-206
[7]  
Delgado AV., 2002, Interfacial electrokinetics and electrophoresis
[8]   Autonomously moving nanorods at a viscous interface [J].
Dhar, P ;
Fischer, TM ;
Wang, Y ;
Mallouk, TE ;
Paxton, WF ;
Sen, A .
NANO LETTERS, 2006, 6 (01) :66-72
[9]   Synthetic self-propelled nanorotors [J].
Fournier-Bidoz, S ;
Arsenault, AC ;
Manners, I ;
Ozin, GA .
CHEMICAL COMMUNICATIONS, 2005, (04) :441-443
[10]   The ζ-potential of glass surface in contact with aqueous solutions [J].
Gu, YG ;
Li, DQ .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2000, 226 (02) :328-339