标题: 以非平衡态分子动力学方法研究奈米铝线的声子热导率
Phonon thermal conductivity in aluminum nanowires via nonequilibrium molecular dynamics method
作者: 翁柏徨
Weng, Bo-Huang
陈煜璋
Chen, Yu-Chang
电子物理系所
关键字: 非平衡态分子动力学;奈米接面;奈米铝线;晶格热导率;声子热导率;Nonequilibrium molecular dynamics;Nanoscale junctions;Aluminum nanowires;Lattice thermal conductivity;Phonon thermal conductivity
公开日期: 2013
摘要: 我们利用非平衡态分子动力学方法来研究奈米接面的声子热传导性质,也考虑在低温时,基于Bose-Einstein distributions的量子修正。在块材的情形,热导率与材料的形状无关;但与此不同的是,奈米接面的热导率是与长度和截面积有关系的。为此,我们计算了连接在两个热储之间的奈米铝线,我们系统性的研究在不同的温度下,热导率与长度和截面积的关系。我们观察到在低温时,热导率与温度为正比关系,而高温时,热导率与温度的关系相对比较弱。在我们计算的所有温度下,热导率随着截面积和长度的增加而上升。我们也观察到在高温时,奈米接面会变的不稳定,高温会使得奈米结构变成锥状,也因其几何结构的关系而降低热导;甚至奈米接面也可能断裂。
We investigate the phonon’s thermal current in nanoscale junctions using classical nonequilibrium molecular dynamics simulations. The quantum mechanical corrections due to Bose-Einstein distributions are also considered in low-temperature regime. The thermal conductivity of bulk material is a material specific property which is independent of the size of sample. In sharp contrast, the thermal conductivity is relevant to the lengths and cross sections in nanoscale junctions. To see this point, we calculate the thermal conductivity of aluminum nanowires connecting to two temperature reservoirs. We systematically investigate the dependence of thermal conductivity on lengths and cross-sectional areas in aluminum nanowires in a wide range of temperatures. We observe that the thermal conductivity is proportional to temperature in the low-temperature regime, while the dependence of thermal conductivity on temperature is relatively weak in the high-temperature regime. For all temperature ranges, the thermal conductivity increases with the increasing nanowire cross-sectional area, and increases with the increasing nanowire length. We also observe instability of nanojunctions in the high-temperature regime due to thermal fluctuations. High temperatures can result in a cone shape structure in the aluminum nanowires which decrease the magnitudes of thermal conductivity due to geometrically constriction, and can even break nanojunctions.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT079921541
http://hdl.handle.net/11536/73551
显示于类别:Thesis