Superconductivity is one of the most striking phenomena in condensed matter physics, characterized by the complete disappearance of electrical resistance below a critical temperature. While its fundamental principles are rooted in quantum mechanics, statistical mechanics, and many-body physics, the rapid development of unconventional and high-temperature superconductors has made the field increasingly challenging for newcomers. This book provides an intuitive and coherent introduction to both conventional and unconventional superconductivity, connecting fundamental concepts with modern developments in the field.
The volume begins with the essential properties of superconductors and proceeds through phenomenological approaches, including London, Pippard, and Ginzburg-Landau theories, before introducing microscopic descriptions ranging from BCS theory to strong-coupling and fluctuation-mediated pairing mechanisms. It further examines superconductivity in a broad spectrum of materials, including cuprates, iron-based, heavy-fermion, organic, and hydride superconductors, and discusses current perspectives on room-temperature superconductivity.
Bridging classical foundations and contemporary research, this self-contained text emphasizes the physical intuition and core knowledge required for understanding superconducting phenomena and materials. It serves as a valuable resource for advanced undergraduate students, graduate students, and researchers entering the fields of superconductivity, condensed matter physics, and materials science.
Superconductivity is one of the most striking phenomena in condensed matter physics, characterized by the complete disappearance of electrical resistance below a critical temperature. While its fundamental principles are rooted in quantum mechanics, statistical mechanics, and many-body physics, the rapid development of unconventional and high-temperature superconductors has made the field increasingly challenging for newcomers. This book provides an intuitive and coherent introduction to both conventional and unconventional superconductivity, connecting fundamental concepts with modern developments in the field.
The volume begins with the essential properties of superconductors and proceeds through phenomenological approaches, including London, Pippard, and Ginzburg-Landau theories, before introducing microscopic descriptions ranging from BCS theory to strong-coupling and fluctuation-mediated pairing mechanisms. It further examines superconductivity in a broad spectrum of materials, including cuprates, iron-based, heavy-fermion, organic, and hydride superconductors, and discusses current perspectives on room-temperature superconductivity.
Bridging classical foundations and contemporary research, this self-contained text emphasizes the physical intuition and core knowledge required for understanding superconducting phenomena and materials. It serves as a valuable resource for advanced undergraduate students, graduate students, and researchers entering the fields of superconductivity, condensed matter physics, and materials science.
Yoji Koike
Physics of Superconductivity High-Temperature Superconductivity Superconducting Properties Josephson Effect Phenomenological Theory of Superconductivity Ginzburg-Landau Theory Vortex State Microscopic Theory of Superconductivity BCS theory Strongly Coupled Superconductivity Anisotropic Cooper Pairing Cooper Pairing Mechanism Electron-Phonon Interaction Spin Fluctuation Orbital Fluctuation