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Thermal relaxation mechanism and role of chemical functionalization in fullerene solutions

机译:富勒烯溶液的热弛豫机理和化学官能化作用

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Using molecular-dynamics simulations we investigate thermal relaxation of C_(60) and C_(84) molecules suspended in octane liquid.Pristine fullerenes exhibit relatively slow relaxation due to weak thermal coupling with the liquid.A comparison of the interfacial transport characteristics obtained from relaxation simulations with those obtained from equilibrium simulations and fluctuation-dissipation theorem analysis demonstrates that the relaxation process involves two main steps:(i) energy flow from high- to low-frequency modes within the fullerene,and (ii) energy flow from low-frequency fullerene modes to the liquid.Functionalization of fullerenes with alkene chains leads to significant reduction of the thermal relaxation time.The relaxation time of functionalized fullerenes becomes independent from the functionalizing chain length beyond approx 10 carbon segments;this can be understood in terms of thermal conductivity along the chain and heat transfer between the chain and the solvent.
机译:通过分子动力学模拟,我们研究了悬浮在辛烷液体中的C_(60)和C_(84)分子的热弛豫,由于富勒烯与液体的热耦合较弱,因此原始富勒烯的弛豫相对较慢。从平衡模拟和波动耗散定理分析获得的模拟结果表明,弛豫过程涉及两个主要步骤:(i)富勒烯内从高频模式到低频模式的能量流,以及(ii)低频下的能量流富勒烯以液体形式存在于液体中。带有烯烃链的富勒烯官能化导致热弛豫时间显着减少。官能化富勒烯的弛豫时间变得独立于官能化链长(超过约10个碳链段);这可以通过导热率来理解沿着链和链与溶剂之间的热传递。

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