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Simulations of water nano-confined between corrugated planes

机译:瓦楞平面之间的水纳米局限性模拟

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Water confined to nanoscale widths in two dimensions between ideal planar walls has been the subject of ample study, aiming at understanding the intrinsic response of water to confinement, avoiding the consideration of the chemistry of actual confining materials. In this work, we study the response of such nanoconfined water to the imposition of a periodicity in the confinement by means of computer simulations, both using empirical potentials and from first-principles. For that we propose a periodic confining potential emulating the atomistic oscillation of the confining walls, which allows varying the lattice parameter and amplitude of the oscillation. We do it for a triangular lattice, with several values of the lattice parameter: one which is ideal for commensuration with layers of Ih ice and other values that would correspond to more realistic substrates. For the former, the phase diagram shows an overall rise of the melting temperature. The liquid maintains a bi-layer triangular structure, however, despite the fact that it is not favoured by the external periodicity. The first-principles liquid is significantly affected by the modulation in its layering and stacking even at relatively small amplitudes of the confinement modulation. Beyond some critical modulation amplitude, the hexatic phase present in flat confinement is replaced by a trilayer crystalline phase unlike any of the phases encountered for flat confinement. For more realistic lattice parameters, the liquid does not display higher tendency to freeze, but it clearly shows inhomogeneous behaviour as the strength of the rugosity increases. In spite of this expected inhomogeneity, the structural and dynamical response of the liquid is surprisingly insensitive to the external modulation. Although the first-principles calculations give a more triangular liquid than the one observed with empirical potentials (TIP4P/2005), both agree remarkably well for the main conclusions of the study.
机译:水局限于纳米级宽度在理想平面壁之间的两个维度已经充分研究的主题,旨在理解的水以限制的固有响应,避免了实际考虑围材料的化学性质的。在这项工作中,我们研究了这样nanoconfined水的在约束的周期性强加通过计算机模拟,都使用经验势的装置和从第一原理的响应。为此,我们提出了一个周期性的限制势模拟了限制壁,其允许改变振荡的晶格参数和幅度的原子论振荡。我们这样做的三角形晶格,与晶格参数的几个值:一个是理想的与将对应于更逼真的基板小时冰和其它值的层commensuration。对于前者,在相图显示的熔化温度的整体上升。中,液体保持双层三角结构,然而尽管它不是由外部周期性青睐。第一原理液体显著受在其分层调制和在调制禁闭的相对小的振幅,即使堆叠。超过某个临界调制幅度,存在于平坦禁闭hexatic相通过不同于任何用于扁平禁闭遇到的相的三层结晶相替换。为了获得更加逼真的晶格参数,液体不显示更高倾向冻结,但是它清楚地显示出不均匀的行为的粗糙度的强度增加。尽管此期望不均匀性,液体的结构和动态响应是令人惊讶地不敏感的外部调制。虽然第一原理计算得到比用经验势(TIP4P / 2005)中观察到的一个更三角形液体,都同意非常好用于该研究的主要结论。

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