Molecular transport through capillaries made with atomic-scale precision

范德瓦尔斯力 纳米流体学 纳米 毛细管作用 纳米技术 原子单位 制作 石墨烯 原子力显微镜 表面光洁度 纳米尺度 物理 化学物理 材料科学 分子 化学 复合材料 有机化学 病理 医学 量子力学 替代医学
作者
Boya Radha,Ali Esfandiar,Fengchao Wang,Aidan P. Rooney,K. Gopinadhan,Ashok Keerthi,Artem Mishchenko,Amritha Janardanan,Peter Blake,Laura Fumagalli,M. Lozada-Hidalgo,Slaven Garaj,Sarah J. Haigh,I. V. Grigorieva,HengAn Wu,A. K. Geǐm
出处
期刊:Nature [Nature Portfolio]
卷期号:538 (7624): 222-225 被引量:705
标识
DOI:10.1038/nature19363
摘要

Nanometre-scale pores and capillaries have long been studied because of their importance in many natural phenomena and their use in numerous applications. A more recent development is the ability to fabricate artificial capillaries with nanometre dimensions, which has enabled new research on molecular transport and led to the emergence of nanofluidics. But surface roughness in particular makes it challenging to produce capillaries with precisely controlled dimensions at this spatial scale. Here we report the fabrication of narrow and smooth capillaries through van der Waals assembly, with atomically flat sheets at the top and bottom separated by spacers made of two-dimensional crystals with a precisely controlled number of layers. We use graphene and its multilayers as archetypal two-dimensional materials to demonstrate this technology, which produces structures that can be viewed as if individual atomic planes had been removed from a bulk crystal to leave behind flat voids of a height chosen with atomic-scale precision. Water transport through the channels, ranging in height from one to several dozen atomic planes, is characterized by unexpectedly fast flow (up to 1 metre per second) that we attribute to high capillary pressures (about 1,000 bar) and large slip lengths. For channels that accommodate only a few layers of water, the flow exhibits a marked enhancement that we associate with an increased structural order in nanoconfined water. Our work opens up an avenue to making capillaries and cavities with sizes tunable to ångström precision, and with permeation properties further controlled through a wide choice of atomically flat materials available for channel walls.
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