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Simulation of dynamical properties of normal and superfluid helium

机译:普通和超流氦的动力学特性模拟

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The formation of a superfluid when ~4He is cooled below the characteristic lambda transition temperature is accompanied by intricate quantum mechanical phenomena, including the emergence of a Bose condensate. A combination of path integral and semiclassical techniques is used to calculate the single-particle velocity autocorrelation function across the normal-to-superfluid transition. We find that the inclusion of particle exchange alters qualitatively the shape of the correlation function below the characteristic transition temperature but has no noticeable effect on the dynamics in the normal phase. The incoherent structure factor extracted from the velocity autocorrelation function is in very good agreement with neutron scattering data, reproducing the width, height, frequency shift, and asymmetry of the curves, as well as the observed increase in peak height characteristic of the superfluid phase. Our simulation demonstrates that the peak enhancement observed in the neutron scattering experiments below the transition temperature arises exclusively from particle exchange, illuminating the role of Bose-statistical effects on the dynamics of the quantum liquid.
机译:当〜4He冷却到特征性的Lambda转变温度以下时,超流体的形成伴随着复杂的量子力学现象,包括Bose冷凝物的出现。使用路径积分和半经典技术的组合来计算法向超流体过渡过程中的单粒子速度自相关函数。我们发现,在特征转变温度以下,包含颗粒交换的物质在质量上改变了相关函数的形状,但对正相动力学没有明显影响。从速度自相关函数提取的非相干结构因子与中子散射数据非常吻合,可再现曲线的宽度,高度,频移和不对称性,以及观察到的超流相峰高特征的增加。我们的模拟表明,在中子散射实验中观察到的低于转变温度的峰增强完全来自粒子交换,这说明了玻色统计效应对量子液体动力学的作用。

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