首页> 外文会议>Micro/Nanoscale Heat Transfer International Conference 2008 >COOLING DYNAMICS OF A GOLD NANOPARTICLE IN A HOST MEDIUM UNDER ULTRAFAST LASER PULSE EXCITATION: A BALLISTIC-DIFFUSIVE APPROACH
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COOLING DYNAMICS OF A GOLD NANOPARTICLE IN A HOST MEDIUM UNDER ULTRAFAST LASER PULSE EXCITATION: A BALLISTIC-DIFFUSIVE APPROACH

机译:超快激光脉冲激发下寄主介质中金纳米颗粒的冷却动力学:弹道扩散方法

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We present a numerical model allowing to determine the electron and lattice temperature dynamics in a gold nanoparticle under subpicosecond pulsed excitation, as well as that of the surrounding medium. For this, we have used the electron-phonon coupling equation in the particle with a source term linked with the laser pulse, and the ballistic-diffusive equations for heat conduction in the host medium. Our results show that the heat transfer rate from the particle to the matrix is significantly smaller than the prediction of Fourier's law. Consequently, the particle temperature rise is much larger and its cooling dynamics is much slower than that obtained using Fourier's law, which is attributed to the nonlocal and nonequilibrium heat conduction in the vicinity of the nanoparticle. These results are expected to be of great importance for interpreting pump-probe experiments performed on single nanoparticles or nanocomposite media.
机译:我们提出了一个数值模型,可以确定亚皮秒脉冲激发下金纳米粒子的电子和晶格温度动力学,以及周围介质的动力学。为此,我们使用了粒子中的电子-声子耦合方程式以及与激光脉冲相关联的源项,以及用于主体介质中热传导的弹道扩散方程式。我们的结果表明,从粒子到基质的传热速率明显小于傅里叶定律的预测。因此,与使用傅立叶定律获得的温度升高相比,颗粒的温度升高要大得多,并且其冷却动力学要慢得多,这归因于纳米颗粒附近的非局部和非平衡热传导。预期这些结果对于解释在单个纳米颗粒或纳米复合介质上进行的泵浦探针实验非常重要。

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