Photon gated transport at the glass nanopore electrode

被引:160
作者
Wang, Gangli [1 ]
Bohaty, Andrew K. [1 ]
Zharov, Ilya [1 ]
White, Henry S. [1 ]
机构
[1] Univ Utah, Dept Chem, Salt Lake City, UT 84112 USA
关键词
D O I
10.1021/ja064274j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The interior surface of the glass nanopore electrode was modified with spiropyran moieties to impart photochemical control of molecular transport through the pore orifice (15-90 nm radius). In low ionic strength acetonitrile solutions, diffusion of a positively charged species (Fe(bpy)(3)(2+)) is electrostatically blocked with similar to 100% efficiency by UV light-induced conversion of the neutral surface-bound spiropyran to its protonated merocyanine form (MEH+). Transport through the pore orifice is restored by either irradiation of the electrode with visible light to convert MEH+ back to spiropyran or addition of a sufficient quantity of supporting electrolyte to screen the electrostatic field associated with MEH+. The transport of neutral redox species through spiropyran-modified glass nanopores is not affected by light, allowing photoselective transport of redox molecules to the electrode surface based on charge discrimination. The glass nanopore electrode can also be employed as a photochemical trap, by UV light conversion of surface-bound spriropyran to MEH+, preventing Fe(bpy)(3)(2+) initially in the pore from diffusing through the orifice.
引用
收藏
页码:13553 / 13558
页数:6
相关论文
共 48 条
[21]   A carbon nanotube-based Coulter nanoparticle counter [J].
Ito, T ;
Sun, L ;
Henriquez, RR ;
Crooks, RM .
ACCOUNTS OF CHEMICAL RESEARCH, 2004, 37 (12) :937-945
[22]   Simultaneous determination of the size and surface charge of individual nanoparticles using a carbon nanotube-based coulter counter [J].
Ito, T ;
Sun, L ;
Crooks, RM .
ANALYTICAL CHEMISTRY, 2003, 75 (10) :2399-2406
[23]   Nanotubule-based molecular-filtration membranes [J].
Jirage, KB ;
Hulteen, JC ;
Martin, CR .
SCIENCE, 1997, 278 (5338) :655-658
[24]   Electrostatic control of ions and molecules in nanofluidic transistors [J].
Karnik, R ;
Fan, R ;
Yue, M ;
Li, DY ;
Yang, PD ;
Majumdar, A .
NANO LETTERS, 2005, 5 (05) :943-948
[25]   Characterization of individual polynucleotide molecules using a membrane channel [J].
Kasianowicz, JJ ;
Brandin, E ;
Branton, D ;
Deamer, DW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (24) :13770-13773
[26]   A light-actuated nanovalve derived from a channel protein [J].
Koçer, A ;
Walko, M ;
Meijberg, W ;
Feringa, BL .
SCIENCE, 2005, 309 (5735) :755-758
[27]   CHRONOPOTENTIOMETRIC STUDIES ON THE OXIDATION OF FERROCENE, RUTHENOCENE, OSMOCENE AND SOME OF THEIR DERIVATIVES [J].
KUWANA, T ;
BUBLITZ, DE ;
HOH, G .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1960, 82 (22) :5811-5817
[28]   pH-switchable, ion-permselective gold nanotubule membrane based on chemisorbed cysteine [J].
Lee, SB ;
Martin, CR .
ANALYTICAL CHEMISTRY, 2001, 73 (04) :768-775
[29]   Photoregulation of mass transport through a photoresponsive azobenzene-modified nanoporous membrane [J].
Liu, NG ;
Dunphy, DR ;
Atanassov, P ;
Bunge, SD ;
Chen, Z ;
López, GP ;
Boyle, TJ ;
Brinker, CJ .
NANO LETTERS, 2004, 4 (04) :551-554