图书简介
This book aims to provide a detailed introduction to the state-of-the-art covariant density functional theory, which follows the Lorentz invariance from the very beginning and is able to describe nuclear many-body quantum systems microscopically and self-consistently. Covariant density functional theory was introduced in nuclear physics in the 1970s and has since been developed and used to describe the diversity of nuclear properties and phenomena with great success.
In order to provide an advanced and updated textbook of covariant density functional theory for graduate students and nuclear physics researchers, this book summarizes the enormous amount of material that has accumulated in the field of covariant density functional theory over the last few decades as well as the latest developments in this area. Moreover, the book contains enough details for readers to follow the formalism and theoretical results, and provides exhaustive references to explore the research literature.
Key Features:
○ This book focuses on the covariant version of density functional theory, summarizes the latest developments as well as the enormous amount of material that has accumulated over the last few decades, and provides a comprehensive overview of its development and applications for nuclear structure
○ This book contains enough details for a beginner in nuclear physics to follow the formalism and theoretical results, and provides exhaustive references to explore the research literature
○ The authors include all the experts in this field including many world-leading scientists from China, Europe, Japan, and United States
Concept of Covariant Density Functional Theory in Nuclei; Relativistic Mean-Field Theory; Density Functional Theory of Pairing; Relativistic Hartree–Fock–Bogoliubov Theory: Ground States and Excitations; Superheavy Nuclei and Fission Barriers; Relativistic Symmetries in Nuclear Single-Particle Spectra; Structure of Hypernuclei in Relativistic Approaches; Rotating Nuclei: From Ground State to the Extremes of Spin and Deformation; Novel Rotational Excitations; Small Amplitude Motion; Nuclear Shell Structure and Response with Quasiparticle-Vibration Coupling; Beyond the Relativistic Mean-Field Approximation — Collective Correlations; Heavy Element in Astrophysical Nucleosynthesis; Relativistic Density Functional Theory for Finite Nuclei and Neutron Stars; Relativistic Versus Non-Relativistic Mean Field
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