Enhanced osmotic transport in individual double-walled carbon nanotube

被引:0
作者
Guandong Cui
Zhi Xu
Han Li
Shuchen Zhang
Luping Xu
Alessandro Siria
Ming Ma
机构
[1] Tsinghua University,Department of Mechanical Engineering, State Key Laboratory of Tribology in Advanced Equipment
[2] Tsinghua University,Center for Nano and Micro Mechanics
[3] Peking University,Center for Nanochemistry, Beijing Science and Engineering Center for Nanocarbons, Beijing National Laboratory for Molecular Sciences, Key Laboratory for the Physics and Chemistry of Nanodevices, College of Chemistry and Molecular Engineer
[4] Tsinghua University,School of Aerospace Engineering
[5] ENS,Laboratoire de Physique de l’Ecole normale Supérieure
[6] Université PSL,undefined
[7] CNRS,undefined
[8] Sorbonne Université,undefined
[9] Université de Paris,undefined
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摘要
The transport of fluid and ions across nanotubes or nanochannels has attracted great attention due to the ultrahigh energy power density and slip length, with applications in water purification, desalination, energy conversion and even ion-based neuromorphic computing. Investigation on individual nanotube or nanochannel is essential in revealing the fundamental mechanism as well as demonstrating the property unambiguously. Surprisingly, while carbon nanotube is the pioneering and one of the most attractive systems for nanofluidics, study on its response and performance under osmotic forcing is lacking. Here, we measure the osmotic energy conversion for individual double-walled carbon nanotube with an inner radius of 2.3 nm. By fabricating a nanofluidic device using photolithography, we find a giant power density (up to 22.5 kW/m2) for the transport of KCl, NaCl, and LiCl solutions across the tube. Further experiments show that such an extraordinary performance originates from the ultrahigh slip lengths (up to a few micrometers). Our results suggest that carbon nanotube is a good candidate for not only ultrafast transport, but also osmotic power harvesting under salinity gradients.
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