(185i) Fast Ion Diffusion in Carbon Nanotube Channels
AIChE Annual Meeting
2020
2020 Virtual AIChE Annual Meeting
Engineering Sciences and Fundamentals
Effects of Confinement on Molecular Properties
Monday, November 16, 2020 - 10:00am to 10:15am
To obtain a precise quantification of the diffusive flow under CNT graphitic confinement, we have fabricated membranes with a large but known number of single-walled carbon nanotubes (SWCNT) as fluid transport pathways. Contrary to previous membrane systems, this platform enables us to minimize uncertainties in the calculation of the per-pore flow rate. A series of stringent control experiments confirms that these membranes are defect free and that transport occurs only through SWCNTs. Once corrected for the boundary layer resistance at the membrane/fluid interface, our measurements reveal that the transport diffusivity of small ions in single-walled carbon nanotubes is more than one order of magnitude faster than in the bulk.4 The dependence of the flow enhancement on the ion chemico-physical properties is also discussed. Together with indicating that CNT membranes could enable dialysis processes with unprecedented efficiency, these results have important implications for a broad range of applications such as energy storage/harvesting and chemical separation/detection, where ion permeation through nanoporous carbon materials is key.
References
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- S. F. Buchsbaum, M. L. Jue, A. Sawvel, C. Chen, E. R. Meshot, S. J. Park, M. Wood, K. J. Wu, C. L. Bilodeau, T. A. Pham, E. Y. Lau, F. Fornasiero*, submitted (2020)
This work was performed under the auspices of the U.S. Department of Energy by Lawrence Livermore National Laboratory under Contract DE-AC52-07NA27344. LLNL-ABS-797189