论文标题
部分可观测时空混沌系统的无模型预测
On the chemical potential of many-body perturbation theory in extended systems
论文作者
论文摘要
在有限温度下计算电子相关效应的许多方法与大型典型合奏中的多体扰动理论有关。但是,在大多数应用中,平均电子数量是已知的,而不是化学潜力,要求必须迭代地重复昂贵的相关计算,以搜索产生所需的电子平均数量的化学电位。但是,在具有移动电荷的扩展系统中,远程静电相互作用应确保负电荷的平均比率是任何有限的化学电位。每个电子的所有特性实际上都与化学电位无关,例如在电势处的电线中。 这项工作表明,在非相互作用的化学潜力下,交换相关能源的无限尺寸极限与交换相关巨型潜力的无限尺寸极限一致。后者仅需要每个系统尺寸的一个昂贵的相关计算。该工作类似于远程相互作用粒子的经典模拟,它使用库仑相互作用的正则化,使每个电子平均仅与模拟中有电子的电子相互作用,避免了与周期性图像相互作用。 已经对温暖均匀的电子气体进行了数值计算,用于Spencer-Alavi正则化,采用有限温度的Hartree近似近似,用于自持平场,并线性化有限的直接环形环耦合群集群双倍的群集双倍的相关性。
Many methods for computing electronic correlation effects at finite temperature are related to many-body perturbation theory in the grand-canonical ensemble. In most applications, however, the average number of electrons is known rather than the chemical potential, requiring that expensive correlation calculations must be repeated iteratively in search for the chemical potential that yields the desired average number of electrons. In extended systems with mobile charges, however, the long-ranged electrostatic interaction should guarantee that the average ratio of negative and positive charges is one for any finite chemical potential. All properties per electron are virtually independent of the chemical potential, as for instance in an electric wire at different voltage potentials. This work shows that the infinite-size limit of the exchange-correlation free energy agrees with the infinite-size limit of the exchange-correlation grand potential at a non-interacting chemical potential. The latter requires only one expensive correlation calculation for each system size. Analogous to classical simulations of long-range-interacting particles, this work uses a regularization of the Coulomb interaction such that each electron on average interacts only with as many electrons as there are electrons in the simulation, avoiding interactions with periodic images. Numerical calculations of the warm uniform electron gas have been conducted with the Spencer--Alavi regularization employing the finite-temperature Hartree approximation for the self-consistent field and linearized finite-temperature direct-ring coupled cluster doubles for treating correlation.