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首页> 外文期刊>The Journal of Chemical Physics >Molecular ordering and phase transitions in alkanol monolayers at the water-hexane interface
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Molecular ordering and phase transitions in alkanol monolayers at the water-hexane interface

机译:水-己烷界面上链烷醇单分子层中的分子有序化和相变

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The interface between bulk water and bulk hexane solutions of n-alkanols (H(CH_2)_mOH,where m = 20,22,24,or 30) is studied with x-ray reflectivity,x-ray off-specular diffuse scattering,and interfacial tension measurements.The alkanols adsorb to the interface to form a monolayer.The highest density,lowest temperature monolayers contain alkanol molecules with progressive disordering of the chain from the -CH_2OH to the -CH_3 group.In the terminal half of the chain that includes the -CH_3 group the chain density is similar to that observed in bulk liquid alkanes just above their freezing temperature.The density in the alkanol headgroup region is 10% greater than either bulk water or the ordered headgroup region found in alkanol monolayers at the water-vapor interface.We conjecture that this higher density is a result of water penetration into the headgroup region of the disordered monolayer.A ratio of 1:3 water to alkanol molecules is consistent with our data.We also place an upper limit of one hexane to five or six alkanol molecules mixed into the alkyl chain region of the monolayer.In contrast,H(CH_2)_30OH at the water-vapor interface forms a close-packed,ordered phase of nearly rigid rods.Interfacial tension measurements as a function of temperature reveal a phase transition at the water-hexane interface with a significant change in interfacial excess entropy.This transition is between a low temperature interface that is nearly fully covered with alkanols to a higher temperature interface with a much lower density of alkanols.The transition for the shorter alkanols appears to be first order whereas the transition for the longer alkanols appears to be weakly first order or second order.The x-ray data are consistent with the presence of monolayer domains at the interface and determine the domain coverage (fraction of interface covered by alkanol domains) as a function of temperature.This temperature dependence is consistent with a theoretical model for a second order phase transition that accounts for the domain stabilization as a balance between line tension and long range dipole forces.Several aspects of our measurements indicate that the presence of domains represents the appearance of a spatially inhomogeneous phase rather than the coexistence of two homogeneous phases.
机译:利用X射线反射率,X射线非镜面散射和X射线反射率研究了正链烷醇(H(CH_2)_mOH,其中m = 20、22、24或30)的本体水和本体己烷溶液之间的界面。界面张力测量。链烷醇吸附到界面形成单层。密度最高,温度最低的单层包含链烷醇分子,其链从-CH_2OH到-CH_3基团逐渐紊乱。在链的末端,包括-CH_3基团的链密度与刚好在其冷冻温度以上的本体液态烷烃中所观察到的相似。在醇-头基区域的密度比水或在水-处烷醇单层中发现的有序头基区域大10%。我们推测这种较高的密度是水渗透到无序单分子层的头基区域的结果,水与烷醇分子的比例为1:3与我们的数据一致,我们还设定了上限一个己烷到五个或六个链烷醇分子混合到单层的烷基链区域中。相反,水-蒸汽界面处的H(CH_2)_30OH形成几乎刚性棒的密排有序相。温度的函数揭示了在水-己烷界面处的相变以及界面过量熵的显着变化,该转变是在几乎完全被烷醇覆盖的低温界面与具有低得多的烷醇密度的高温界面之间较短链烷醇的跃迁似乎是一阶的,而较长链烷醇的跃迁似乎是弱的一阶或二阶的.x射线数据与界面上单层结构域的存在一致并确定了结构域的覆盖率(烷醇域覆盖的界面分数)随温度变化的关系。这种温度依赖性与二阶理论模型一致相变说明了区域稳定是线张力和远距离偶极力之间的平衡。我们的测量的几个方面表明,区域的存在表示空间不均匀相的出现,而不是两个均相的共存。

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