Photoionization of Atomic Systems Using the Random-Phase Approximation Including Relativistic Interactions
Pranawa C. Deshmukh, Steven Trent Manson
Abstract
Open-access reader
Pranawa C. Deshmukh, Steven Trent Manson
Abstract
Open-access reader
Approximation methods are unavoidable in solving a many-electron problem. One of the most successful approximations is the random-phase approximation (RPA). Miron Amusia showed that it can be used successfully to describe atomic photoionization processes of many-electron atomic systems. In this article, the historical reasons behind the term “random-phase approximation” are revisited. A brief introduction to the relativistic RPA (RRPA) developed by Walter Johnson and colleagues is provided and some of its illustrative applications are presented.
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Approximation methods are unavoidable in solving a many-electron problem. One of the most successful approximations is the random-phase approximation (RPA). Miron Amusia showed that it can be used successfully to describe atomic photoionization processes of many-electron atomic systems. In this article, the historical reasons behind the term “random-phase approximation” are revisited. A brief introduction to the relativistic RPA (RRPA) developed by Walter Johnson and colleagues is provided and some of its illustrative applications are presented.
Key concepts: Random phase approximation, Photoionization, Physics, Electron, Phase (matter), Statistical physics, Quantum mechanics, Computational physics