Manjunatha Likhith, Takamatsu Hiroshi, Cannon James J
Faculty of Engineering, Department of Mechanical Engineering, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka, 819-0395, Japan.
Sci Rep. 2021 Mar 10;11(1):5597. doi: 10.1038/s41598-021-84446-9.
Precise control of thermophysical properties of liquids through tailor-made design of the liquid molecular structure is a goal that, if achieved, could have significant positive impacts on machine design, performance and durability. In this work we show how the breakdown of the Green-Kubo relations down to the atomic level in molecular dynamics simulation can give useful insight into the mechanisms of thermal conduction. Using a group of five small alcohols as a case study, we demonstrate how combining this level of insight with differential-structure analysis reveals the competition for conduction between carbon and hydroxyl group atoms, and show how this competition contributes to the change in thermal conductivity observed in experiment. We hope that this method will become a useful tool in the quest for molecular-structure based thermal design.
通过对液体分子结构进行定制设计来精确控制液体的热物理性质,这一目标若能实现,将对机器设计、性能和耐久性产生重大积极影响。在这项工作中,我们展示了在分子动力学模拟中,格林-库博关系在原子层面的分解如何能为热传导机制提供有用的见解。以一组五种小分子醇为案例研究,我们证明了将这种见解水平与差分结构分析相结合,如何揭示碳和羟基原子之间的传导竞争,并展示这种竞争如何导致实验中观察到的热导率变化。我们希望这种方法将成为基于分子结构的热设计探索中的一种有用工具。