Department of Chemistry, College of Sciences, Persian Gulf University, Boushehr 75168, Iran.
J Chem Phys. 2011 Aug 14;135(6):064703. doi: 10.1063/1.3623471.
A new molecular dynamics simulation method, with coupling to external baths, is used to perform equilibrium simulations on polyamide-6,6 trimers nanoconfined between graphene surfaces, in equilibrium with the bulk polymer. The method is coupled with the reverse nonequilibrium molecular dynamics simulation technique to exchange heat in the direction normal to the surfaces. To be able to study the effect of confinement on the heat conductance in nanoconfined pores, in this work a number of simulations on systems with different pore sizes are done. It is concluded that the coefficient of heat conductivity depends on the degree of polymer layering between the surfaces and on the pore width. Our results further indicate a considerable temperature drop at the interface between the surfaces and polymer. The calculated Kapitza lengths depend on the intersurface distance and on the layering of the polymer nanoconfined between the surfaces.
一种新的分子动力学模拟方法,与外部浴耦合,用于在与本体聚合物平衡的情况下,在石墨烯表面之间的聚酰胺-6,6 三聚体纳米受限中进行平衡模拟。该方法与反向非平衡分子动力学模拟技术相结合,以在垂直于表面的方向上交换热量。为了能够研究受限对纳米受限孔中热导率的影响,在这项工作中,对具有不同孔径的系统进行了多次模拟。得出的结论是,热导率系数取决于表面之间聚合物分层的程度和孔的宽度。我们的结果进一步表明,在表面和聚合物之间的界面处会有相当大的温度下降。计算出的 Kapitza 长度取决于界面距离和表面之间受限的聚合物的分层。