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Finite Temperature Green's Function Approach for Excited State and Thermodynamic Properties of Cool to Warm Dense Matter

机译:冷-热致密物质的激发态和热力学性质的有限温度格林函数方法

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摘要

We present a finite-temperature extension of the retarded cumulant Green's function for calculations of exited-state, correlation, and thermodynamic properties of electronic systems. The method incorporates a cumulant to leading order in the screened Coulomb interaction W, and improves on the GW approximation of many-body perturbation theory. Results for the homogeneous electron gas are presented for a wide range of densities and temperatures, from cool to warm dense matter regimes, which reveal several hitherto unexpected properties. For example, correlation effects remain strong at high T while the exchange-correlation energy becomes small; also the spectral function broadens and damping increases with temperature, blurring the usual quasiparticle picture. These effects are evident, e.g., in Compton scattering which exhibits many-body corrections that persist at normal densities and intermediate T. The approach also yields exchange-correlation energies and potentials in good agreement with existing methods.
机译:我们提出了延迟累积量格林函数的有限温度扩展,用于计算电子系统的出射态,相关性和热力学性质。该方法在筛选的库仑相互作用W中将累积量加到了前导顺序,并改进了多体摄动理论的GW近似。给出了从冷态到热致密物态的各种密度和温度下均质电子气的结果,这些结果揭示了迄今未曾想到的几种特性。例如,在高T下相关效应仍然很强,而交换相关能量却变小。光谱函数也会随着温度变宽和衰减而增加,从而模糊了通常的准粒子图像。这些效应是明显的,例如在康普顿散射中表现出的多体校正在正常密度和中间T时仍保持不变。该方法还产生了与现有方法完全一致的交换相关能量和电势。

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  • 来源
    《Physical review letters》 |2017年第17期|176403.1-176403.5|共5页
  • 作者

    Kas J. J.; Rehr J. J.;

  • 作者单位

    Univ Washington, Dept Phys, Seattle, WA 98195 USA;

    Univ Washington, Dept Phys, Seattle, WA 98195 USA;

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  • 正文语种 eng
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