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限制在晶体状狭缝纳米孔中的流体结构:双层膜。

The structure of fluids confined in crystalline slitlike nanoscopic pores: bilayers.

作者信息

Sałamacha L, Patrykiejew A, Sokołowski S, Binder K

机构信息

Faculty of Chemistry, MCS University, 20031 Lublin, Poland.

出版信息

J Chem Phys. 2004 Jan 8;120(2):1017-30. doi: 10.1063/1.1631933.

Abstract

Grand canonical and canonical ensemble Monte Carlo simulation methods are used to study the structure and phase behavior of Lennard-Jones fluids confined between the parallel (100) planes of the face centered cubic crystal. Ultra thin slit pores of the width allowing for the formation of only two adsorbate layers are considered. It is demonstrated that the structure of adsorbed phases is very sensitive to the wall-wall separation and to the strength of the fluid-wall potential. It is also shown that the structure of low temperature (solid) phases strongly depends on the fluid density. In particular, when the surface field is sufficiently strong, then the high density phases may exhibit a domain wall structure, quite the same as found in monolayer films adsorbed at a single substrate wall. On the other hand, the weakening of the surface potential leads to the regime in which only the hexagonally ordered bilayer structure is stable. The phase diagrams for a series of systems are estimated. It is shown that, depending on the pore width and the temperature, the condensation leads to the formation of the commensurate or incommensurate phases. The incommensurate phases may have the domain-wall or the hexagonal structure depending on the pore width and the strength of the fluid-wall potential.

摘要

巨正则系综和正则系综蒙特卡罗模拟方法被用于研究限制在面心立方晶体平行(100)平面之间的 Lennard-Jones 流体的结构和相行为。考虑了宽度仅允许形成两个吸附层的超薄狭缝孔。结果表明,吸附相的结构对壁间距和流体-壁势的强度非常敏感。还表明,低温(固体)相的结构强烈依赖于流体密度。特别是,当表面场足够强时,高密度相可能会呈现畴壁结构,这与在单个衬底壁上吸附的单层膜中发现的结构完全相同。另一方面,表面势的减弱导致只有六方有序双层结构稳定的状态。估计了一系列系统的相图。结果表明,根据孔宽和温度,凝聚会导致形成共格或非共格相。非共格相可能根据孔宽和流体-壁势的强度具有畴壁或六方结构。

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引用本文的文献

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Eur Phys J E Soft Matter. 2005 Dec;18(4):425-36. doi: 10.1140/epje/e2005-00055-4. Epub 2005 Dec 13.

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