4.8 Article

Adjustable diffusion enhancement of water molecules in a nanoscale water bridge

Journal

NANOSCALE
Volume 13, Issue 2, Pages 1000-1005

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0nr06389d

Keywords

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Funding

  1. National Natural Science Foundation of China [11405245]
  2. Natural Science Foundation of Shanghai [14ZR1448100, 19ZR1463200]
  3. Big Data Science Center of Shanghai Synchrotron Radiation Facility, Shanghai Supercomputer Center of China
  4. Chinese Academy of Sciences

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The paper utilizes an electric field to create an artificial water channel by molecular dynamics simulations, facilitating the diffusion process of water molecules between two disjoint nanotubes and achieving a significant enhancement of diffusion coefficients.
The emergence of nanofluidics in the last few decades has led to the development of various applications such as water desalination, ultrafiltration, osmotic energy conversion, etc. In particular, understanding water molecule transport in nanotubes is of importance for designing novel ultrafiltration and filtering devices. In this paper, we use an electric field to form a nanoscale water bridge as an artificial water channel to connect two separate disjoint nanotubes by molecular dynamics simulations. The extended length of the water bridge under different electric field strengths could adjust the diffusion process of the water molecules crossing the two disjoint nanotubes and the diffusion coefficients could be remarkably enhanced up to 4 times larger than the value in bulk water. By analyzing the structure of the water bridge, it is found that the diffusion enhancement originates from the strengthened interactions and the increase of hydrogen bonds between the water molecules due to the restrained reorientation from the external electric field. Our result provides a promising insight for realizing an efficient mass transport between various disjoint nanochannels.

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