Davenport Matthew, Rodriguez Andrew, Shea Kenneth J, Siwy Zuzanna S
Department of Physics and Astronomy, University of California, Irvine, Irvine, California 92697, USA.
Nano Lett. 2009 May;9(5):2125-8. doi: 10.1021/nl900630z.
Room temperature ionic liquids (RTILs) are substances composed entirely of ions and are liquids at or below 100 degrees C. Ionic conductivity of RTIL is one of the most important physical properties of these unique substances that determine their potential applications as a new medium for capacitors, fuel and solar cells as well as in separation systems. The quality of performance of these devices relies on the understanding of ionic transport of RTIL on a nanoscale. In this letter, we use ionic current carried by RTILs in single nanopores as a probe for their nanoscale transport properties. We show that the conductivity of RTILs through nanopores is significantly less than corresponding bulk values. Our experiments allowed us to address the nature of the interaction of these confined RTILs with charged surfaces. Electrostatic interactions of RTILs with nanopores are the basis for the formation of ionic diodes rectifying transport of the constituent ions.
室温离子液体(RTILs)是完全由离子组成的物质,在100摄氏度及以下呈液态。RTIL的离子电导率是这些独特物质最重要的物理性质之一,它决定了它们作为电容器、燃料电池和太阳能电池以及分离系统的新型介质的潜在应用。这些器件的性能质量依赖于对RTIL在纳米尺度上离子传输的理解。在这封信中,我们将RTILs在单个纳米孔中携带的离子电流用作探测其纳米尺度传输性质的探针。我们表明,RTILs通过纳米孔的电导率明显低于相应的体相值。我们的实验使我们能够探究这些受限RTILs与带电表面相互作用的本质。RTILs与纳米孔的静电相互作用是形成整流组成离子传输的离子二极管的基础。