4.8 Article

Ab initionanofluidics: disentangling the role of the energy landscape and of density correlations on liquid/solid friction

期刊

NANOSCALE
卷 12, 期 20, 页码 10994-11000

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0nr02511a

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资金

  1. SNSF project [PZ00P2_179964]
  2. ANR [ANR-16-CE06-0004-01 NECtAR]
  3. Institut Universitaire de France
  4. NCCR MARVEL - SNSF through the Inspire Potentials fellowship
  5. Swiss National Supercomputer Centre (CSCS) [s826]
  6. PRACE [pr66]
  7. Swiss National Science Foundation (SNF) [PZ00P2_179964] Funding Source: Swiss National Science Foundation (SNF)

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Despite relevance to water purification and renewable energy conversion membranes, the molecular mechanisms underlying water slip are poorly understood. We disentangle the static and dynamical origin of water slippage on graphene, hBN and MoS(2)by means of large-scaleab initiomolecular dynamics. Accounting for the role of the electronic structure of the interface is essential to determine that water slips five and eleven times faster on graphene compared to hBN and to MoS2, respectively. Intricate changes in the water energy landscape as well as in the density correlations of the fluid provide, respectively, the main static and dynamical origin of water slippage. Surprisingly, the timescales of the density correlations are the same on graphene and hBN, whereas they are longer on MoS(2)and yield a 100% slowdown in the flow of water on this material. Our results pave the way for anin silicofirst principles design of materials with enhanced water slip, through the modification of properties connected not only to the structure, but also to the dynamics of the interface.

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