Hung Francisco R, Coasne Benoit, Santiso Erik E, Gubbins Keith E, Siperstein Flor R, Sliwinska-Bartkowiak Malgorzata
Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, North Carolina 27695-7905, USA.
J Chem Phys. 2005 Apr 8;122(14):144706. doi: 10.1063/1.1881072.
We report Monte Carlo simulation results for freezing of Lennard-Jones carbon tetrachloride confined within model multiwalled carbon nanotubes of different diameters. The structure and thermodynamic stability of the confined phases, as well as the transition temperatures, were determined from parallel tempering grand canonical Monte Carlo simulations and free-energy calculations. The simulations show that the adsorbate forms concentric molecular layers that solidify into defective quasi-two-dimensional hexagonal crystals. Freezing in such concentric layers occurs via intermediate phases that show remnants of hexatic behavior, similar to the freezing mechanism observed for slit pores in previous works. The adsorbate molecules in the inner regions of the pore also exhibit changes in their properties upon reduction of temperature. The structural changes in the different regions of adsorbate occur at temperatures above or below the bulk freezing point, depending on pore diameter and distance of the adsorbate molecules from the pore wall. The simulations show evidence of a rich phase behavior in confinement; a number of phases, some of them inhomogeneous, were observed for the pore sizes considered. The multiple transition temperatures obtained from the simulations were found to be in good agreement with recent dielectric relaxation spectroscopy experiments for CCl(4) confined within multiwalled carbon nanotubes.
我们报告了对限制在不同直径的模型多壁碳纳米管内的 Lennard-Jones 四氯化碳冻结的蒙特卡罗模拟结果。通过并行回火巨正则蒙特卡罗模拟和自由能计算确定了受限相的结构和热力学稳定性以及转变温度。模拟表明,吸附质形成同心分子层,这些分子层凝固成有缺陷的准二维六方晶体。在这种同心层中的冻结通过显示六方行为残余的中间相发生,这类似于先前工作中在狭缝孔中观察到的冻结机制。孔内部区域的吸附质分子在温度降低时其性质也会发生变化。吸附质不同区域的结构变化发生在高于或低于体相凝固点的温度下,这取决于孔径和吸附质分子与孔壁的距离。模拟显示了受限情况下丰富的相行为证据;对于所考虑的孔径,观察到了许多相,其中一些是不均匀的。从模拟中获得的多个转变温度与最近对限制在多壁碳纳米管内的 CCl₄ 进行的介电弛豫光谱实验结果非常吻合。