High-flux water desalination with interfacial salt sieving effect in nanoporous carbon composite membranes

被引:0
作者
Wei Chen
Shuyu Chen
Tengfei Liang
Qiang Zhang
Zhongli Fan
Hang Yin
Kuo-Wei Huang
Xixiang Zhang
Zhiping Lai
Ping Sheng
机构
[1] King Abdullah University of Science and Technology,Division of Physical Science and Engineering
[2] Chinese Academy of Sciences,CAS Key Laboratory of Low
[3] Hong Kong University of Science and Technology,Carbon Conversion Science and Engineering, Shanghai Advanced Research Institute
[4] Northwestern Polytechnical University,Department of Physics
[5] Hong Kong University of Science and Technology,School of Astronautics
来源
Nature Nanotechnology | 2018年 / 13卷
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摘要
Freshwater flux and energy consumption are two important benchmarks for the membrane desalination process. Here, we show that nanoporous carbon composite membranes, which comprise a layer of porous carbon fibre structures grown on a porous ceramic substrate, can exhibit 100% desalination and a freshwater flux that is 3–20 times higher than existing polymeric membranes. Thermal accounting experiments demonstrated that the carbon composite membrane saved over 80% of the latent heat consumption. Theoretical calculations combined with molecular dynamics simulations revealed the unique microscopic process occurring in the membrane. When the salt solution is stopped at the openings to the nanoscale porous channels and forms a meniscus, the vapour can rapidly transport across the nanoscale gap to condense on the permeate side. This process is driven by the chemical potential gradient and aided by the unique smoothness of the carbon surface. The high thermal conductivity of the carbon composite membrane ensures that most of the latent heat is recovered.
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页码:345 / 350
页数:5
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