Electrostatic-Charge- and Electric-Field-Induced Smart Gating for Water Transportation

被引:72
作者
Xiao, Kai [1 ]
Zhou, Yahong [2 ]
Kong, Xiang-Yu [2 ]
Xie, Ganhua [1 ]
Li, Pei [1 ]
Zhang, Zhen [1 ]
Wen, Liping [2 ]
Jiang, Lei [2 ]
机构
[1] Chinese Acad Sci, Inst Chem, Key Lab Green Printing, BNLMS, Beijing 100190, Peoples R China
[2] Chinese Acad Sci, Tech Inst Phys & Chem, Key Lab Bioinspired Smart Interfacial Sci, Beijing 100190, Peoples R China
关键词
nanochannel; nanopore; gating; water transportation; ion transportation; HYDROPHOBIC NANOPORES; CONTACT ANGLES; CHANNEL; CONFINEMENT; SURFACES; PORE; FABRICATION; MECHANISM; BEHAVIOR; BARRIER;
D O I
10.1021/acsnano.6b05682
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Regulating and controlling the transport of water across nanochannels is of great importance in both fundamental research and practical applications because it is difficult to externally control water flow through nanochannels as in biological channels. To date, only a few hydrophobic nanochannels controlling the transport of water have been reported, all of which use exotic hydrophobic molecules. However, the effect of electrostatic charges, which plays an indispensable role in membrane proteins and dominates the energetics of water permeation across aquaporins, has not gained enough attention to control water transport through a solid-state nanochannel/nanopore. Here, we report electrostatic-charge-induced water gating of a single ion track-etched sub-10 nm channel. This system can directly realize the gating transition between an open, conductive state and a closed, nonconductive state by regulating the surface charge density through a process that involves alternating capillary evaporation and capillary condensation. Compared to the introduction of exotic hydrophobic molecules, water gating controlled by electrostatic charges is simple, convenient, and effective. Such a system anticipates potential applications including desalination, controllable valves, and drug delivery systems.
引用
收藏
页码:9703 / 9709
页数:7
相关论文
共 43 条
[1]  
[Anonymous], ANGEW CHEM
[2]   Diode-like ion-track asymmetric nanopores: Some alternative methods of fabrication [J].
Apel, P. Yu. ;
Blonskaya, I. V. ;
Orelovitch, O. L. ;
Dmitriev, S. N. .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2009, 267 (06) :1023-1027
[3]   Effect of nanopore geometry on ion current rectification [J].
Apel, Pavel Yu ;
Blonskaya, Irina V. ;
Orelovitch, Oleg L. ;
Ramirez, Patricio ;
Sartowska, Bozena A. .
NANOTECHNOLOGY, 2011, 22 (17)
[4]   Liquid-vapor oscillations of water in hydrophobic nanopores [J].
Beckstein, O ;
Sansom, MSP .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (12) :7063-7068
[5]   A hydrophobic gating mechanism for nanopores [J].
Beckstein, O ;
Biggin, PC ;
Sansom, MSP .
JOURNAL OF PHYSICAL CHEMISTRY B, 2001, 105 (51) :12902-12905
[6]   Hydrophobic gating of mechanosensitive channel of large conductance evidenced by single-subunit resolution [J].
Birkner, Jan Peter ;
Poolman, Bert ;
Kocer, Armagan .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (32) :12944-12949
[7]   Effect of field direction on electrowetting in a nanopore [J].
Bratko, Dusan ;
Daub, Christopher D. ;
Leung, Kevin ;
Luzar, Alenka .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2007, 129 (09) :2504-2510
[8]   Confinement effects on freezing and melting [J].
Christenson, HK .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2001, 13 (11) :R95-R133
[9]   Electric-field-controlled water and ion permeation of a hydrophobic nanopore [J].
Dzubiella, J ;
Hansen, JP .
JOURNAL OF CHEMICAL PHYSICS, 2005, 122 (23)
[10]   Contact angles on spherical surfaces [J].
Extrand, C. W. ;
Moon, Sung In .
LANGMUIR, 2008, 24 (17) :9470-9473