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Titlebook: Handbook of Relativistic Quantum Chemistry; Wenjian Liu Reference work 2017 Springer-Verlag Berlin Heidelberg 2017 Quantum Electrodynamics

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發(fā)表于 2025-3-21 18:46:52 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書目名稱Handbook of Relativistic Quantum Chemistry
編輯Wenjian Liu
視頻videohttp://file.papertrans.cn/423/422073/422073.mp4
概述Comprehensive discussions on relativistic many-electron Hamiltonians.Detailed discussions on the symmetries and analytical structures of relativistic wave functions.Comprehensive review of existing an
圖書封面Titlebook: Handbook of Relativistic Quantum Chemistry;  Wenjian Liu Reference work 2017 Springer-Verlag Berlin Heidelberg 2017 Quantum Electrodynamics
描述.This handbook focuses on the foundations of relativistic quantum mechanics and addresses a number of fundamental issues never covered before in a book. For instance: How can many-body theory be combined with quantum electrodynamics? How can quantum electrodynamics be interfaced with relativistic quantum chemistry? What is the most appropriate relativistic many-electron Hamiltonian? How can we achieve relativistic explicit correlation? How can we formulate relativistic properties? – just to name a few. Since relativistic quantum chemistry is an integral component of computational chemistry, this handbook also supplements the “Handbook of Computational Chemistry”. Generally speaking, it aims to establish the ‘big picture’ of relativistic molecular quantum mechanics as the union of quantum electrodynamics and relativistic quantum chemistry. Accordingly, it provides an accessible introduction for readers new to the field, presents advanced methodologies for experts, and discusses possible future perspectives, helping readers understand when/how to apply/develop the methodologies..
出版日期Reference work 2017
關(guān)鍵詞Quantum Electrodynamics; Relativistic Computations and Applications; Relativistic Hamiltonians; Relativ
版次1
doihttps://doi.org/10.1007/978-3-642-40766-6
isbn_ebook978-3-642-40766-6
copyrightSpringer-Verlag Berlin Heidelberg 2017
The information of publication is updating

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Nuclear Charge Density and Magnetization Distributionsext, almost all of the internal details of nuclear structure can be neglected, and the nuclei can be considered as objects with static extended distributions of charge and magnetic moment. This chapter presents a discussion of nuclear charge density and magnetization distributions. The underlying ge
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Relativistic Self-Consistent Fieldsin some effective (“mean-field”) potential. This potential depends on the one-particle solutions which describe the electron charge distribution; therefore, such mean-field problems are solved iteratively until self-consistency. The two most important relativistic self-consistent field methods are t
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QED Effects and ChallengesQED effects in atoms and molecules. Starting from the famous Lamb’s experiment with hydrogen, we finish with the most recent experiments with heavy ions. We will demonstrate the cases where the QED effects are extremely important for the comparison of the theoretical predictions with the experiment.
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Two-Time Greens Function Methodhe energy shift and other QED effects. Unlike the preceeding methods, the TTGF one is suitable not only in the case of single isolated, but also for the (quasi-)degenerate levels. Starting from the very basic principles and concepts of QED, we will demonstrate, how to derive basic formulas with the
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With-Pair Relativistic Hamiltoniansd to go beyond it, not only for better accuracies but also for better understandings of relativistic quantum mechanics. It is shown here that, at variance with the usual top-down procedures for deriving relativistic Hamiltonians as approximations to quantum electrodynamics (QED), a with-pair relativ
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