4.8 Article

Enhanced Water Evaporation from A-Scale Graphene Nanopores

期刊

ACS NANO
卷 16, 期 9, 页码 15382-15396

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c07193

关键词

graphene nanopores; phase transition; water evaporation; evaporation kinetics; molecular dynamics; enhancement

资金

  1. EPFL
  2. Swiss National Science Foundation (SNSF) AP Energy grant [PYAPP2 173645]
  3. EPFL-Taiwan Scholarship
  4. Supercomputer Education and Research Centre (SERC)
  5. Thematic Unit of Excellence on Computational Materials Science (TUE-CMS) a Department of Science and Technology (DST)
  6. Cooperation and Development Center (CODEV) seed grant

向作者/读者索取更多资源

This study demonstrates that placing angstrom-sized oxygen-functionalized graphene nanopores at the liquid-vapor interface can greatly enhance water evaporation rates. The presence of these nanopores decreases the free energy barrier for water evaporation and increases the rotational and translational dynamics of water molecules, leading to a significant increase in evaporation flux. These findings have potential applications in energy-efficient technologies relying on water evaporation.
Enhancing the kinetics of liquid-vapor transition from nanoscale confinements is an attractive strategy for developing evaporation and separation applications. The ultimate limit of confinement for evaporation is an atom thick interface hosting angstrom-scale nanopores. Herein, using a combined experimental/computational approach, we report highly enhanced water evaporation rates when angstrom sized oxygen-functionalized graphene nanopores are placed at the liquid-vapor interface. The evaporation flux increases for the smaller nanopores with an enhancement up to 35-fold with respect to the bare liquid-vapor interface. Molecular dynamics simulations reveal that oxygen-functionalized nanopores render rapid rotational and translational dynamics to the water molecules due to a reduced and short-lived water-water hydrogen bonding. The potential of mean force (PMF) reveals that the free energy barrier for water evaporation decreases in the presence of nanopores at the atomically thin interface, which further explains the enhancement in evaporation flux. These findings can enable the development of energy-efficient technologies relying on water evaporation.

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