Laboratory of Nanoscale Biology, Institute of Bioengineering, School of Engineering, EPFL, 1015 Lausanne, Switzerland.
Laboratory of Nanoscale Electronics and Structures, Institute of Electrical Engineering, School of Engineering, EPFL, 1015 Lausanne, Switzerland.
Nat Mater. 2016 Aug;15(8):850-5. doi: 10.1038/nmat4607. Epub 2016 Mar 28.
Emergent behaviour from electron-transport properties is routinely observed in systems with dimensions approaching the nanoscale. However, analogous mesoscopic behaviour resulting from ionic transport has so far not been observed, most probably because of bottlenecks in the controlled fabrication of subnanometre nanopores for use in nanofluidics. Here, we report measurements of ionic transport through a single subnanometre pore junction, and the observation of ionic Coulomb blockade: the ionic counterpart of the electronic Coulomb blockade observed for quantum dots. Our findings demonstrate that nanoscopic, atomically thin pores allow for the exploration of phenomena in ionic transport, and suggest that nanopores may also further our understanding of transport through biological ion channels.
在接近纳米尺度的系统中,通常可以观察到电子输运特性产生的突发行为。然而,到目前为止,还没有观察到类似的源于离子输运的介观行为,这很可能是由于在纳米流体学中,用于控制亚纳米纳米孔制造的瓶颈所致。在这里,我们报告了通过单个亚纳米孔结的离子输运测量结果,并观察到了离子库仑阻塞现象:这是在量子点中观察到的电子库仑阻塞的离子对应物。我们的研究结果表明,纳米级原子薄的孔可以探索离子输运中的现象,并表明纳米孔也可能进一步帮助我们理解通过生物离子通道的输运。