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3D flexible water channel: stretchability of nanoscale water bridge

机译:3 d弹性水通道:拉伸性纳米水桥

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Artificial water channels can contribute to a better understanding of natural water channels and offer a highly selective, advanced conductance system. Most studies use nanotubes, however it is difficult to fabricate a flexible structure, and the nanosized diameter brings nanoconfinement effects, and nanotube toxicity arouses biosafety concerns. In this paper, we use an electric field to restrain the water molecules to form a nanoscale water bridge as an artificial water channel to connect a separated solid plate by molecular dynamics simulations. We observe strong 3D flexible stretchability in the water bridge, maintaining a variable length and an arbitrary angle for a considerably long time. The stretching of the water bridge enables it to be polarized at an arbitrary angle and the stretchability is linearly dependent upon the polarization strength. More interestingly, we show the possibility of establishing complex water networks, e.g., triangle, rectangle, hexagon, and tetrahedron-tetrahedron water networks. Our results may help realize structurally flexible and environmentally friendly water channels for lab-on-a-chip applications in nanofluidics.
机译:人工水通道可以贡献更好地理解自然水通道并提供一个高度选择性、先进导系统。然而很难制造灵活结构和纳米尺度的直径nanoconfinement效应,纳米管的毒性引起生物安全问题。电场抑制水分子形成纳米级水桥作为一个人工水通道连接固定板分开通过分子动力学模拟。强大的3 d弹性拉伸性在水里桥,维护一个可变长度和一个任意角相当长一段时间。水桥使它的伸展在任意角度和极化延性是线性依赖于极化强度。建立复杂的可能性水网络,例如,三角形,长方形,六角,tetrahedron-tetrahedron水网络。结构灵活、环保友好的水通道"在纳米流体力学中的应用。

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