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A Molecular Dynamics Study on Heat Transfer Characteristics Over the Interface of Self-Assembled Monolayer and Water Solvent

机译:自组装单层与水界面传热特性的分子动力学研究

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We performed molecular dynamics (MD) simulations of the interface which is comprised of self-assembled monolayer (SAM) and water solvent to investigate heat transfer characteristics. In particular, local thermal boundary conductance (TBC), which is an inverse of so-called Kapitza resistance, at the SAM-solvent interface was evaluated by using the nonequilibrium MD (NEMD) technique in which the one-dimensional thermal energy flux was imposed across the interface. By using two kinds of SAM terminal with hydrophobic and hydrophilic properties, the local TBCs of these interfaces with water solvent were evaluated, and the result showed a critical difference due to an affinity between SAM and solvent. In order to elucidate the molecular-scale mechanism that makes this difference, microscopic components contributing to thermal energy flux across the interface of hydrophilic SAM and water were evaluated in detail, i.e., the total thermal energy flux is decomposed into the heat transfer modes such as the contribution of molecular transport and that of energy exchange by molecular interactions. These heat transfer modes were also compared with those in the bulk water.
机译:我们对由自组装单层(SAM)和水溶剂组成的界面进行了分子动力学(MD)模拟,以研究传热特性。特别是,使用非平衡MD(NEMD)技术评估了在SAM-溶剂界面处的局部热边界电导(TBC),即所谓的Kapitza电阻的倒数,该技术施加了一维热能通量跨界面。通过使用具有疏水性和亲水性的两种SAM末端,评估了这些与水溶剂的界面的局部TBC,结果显示出由于SAM与溶剂之间的亲和力而产生的临界差异。为了阐明造成这种差异的分子尺度机制,详细评估了有助于热能流过亲水性SAM和水的界面的微观成分,即总热能流分解为热传递模式,例如分子相互作用对能量传输和能量交换的贡献。还将这些传热模式与散装水中的传热模式进行了比较。

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