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Can Electron Propagator Methods Be Used To Improve Polarization Propagator Methods?

机译:电子传播器方法可以用来改善极化传播器方法吗?

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摘要

Calculations of Rydberg excitation energies with the second-order polarization propagator approximation (SOPPA) often produce results which are more in error than the random phase approximation (RPA), which formally is the first-order model. This is obviously because of cancellation of errors at the RPA level. On the other hand, valence excitation energies behave as expected, and they are systematically improved in SOPPA compared to RPA. Note that a Rydberg series is related to one of the ionization thresholds of the molecule, and it is thus obvious that a good description of the ionization limits is necessary in order to calculate good values for the Rydberg excitations. From perturbative electron propagator methods it is well-known that the second-order level is inadequate to obtain good ionization energies. It is also known from electron propagator methods that partial inclusion of higher-order terms can greatly improve the ionization energies. In this work it will be investigated if the lessons from electron propagator models can be used to improve to the calculation of Rydberg excitations in perturbative polarization propagator methods.
机译:使用二阶偏振传播器近似(SOPPA)计算里德堡激发能通常会产生比随机相位近似(RPA)更大的误差,随机相位近似是正式的一阶模型。显然,这是因为RPA级别的错误已消除。另一方面,化合价激发能表现出预期的效果,与RPA相比,它们在SOPPA中得到了系统的改善。注意,Rydberg级数与分子的电离阈值之一有关,因此很明显,为了计算Rydberg激发的良好值,有必要对电离极限进行良好的描述。从微扰电子传播器方法,众所周知,二阶能级不足以获得良好的电离能。从电子传播器方法还已知,部分地包含高阶项可以极大地改善电离能。在这项工作中,将研究是否可以使用电子传播器模型中的经验教训来改进微扰极化传播器方法中里德伯格激发的计算。

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