Book contents
- Frontmatter
- Contents
- Preface
- Abbreviations
- 1 Introduction to Superconductivity
- 2 Microscopic Models for High Temperature Superconductors
- 3 Basic Properties of d-wave Superconductors
- 4 Quasiparticle Excitation Spectra
- 5 Tunneling Effect
- 6 Josephson Effect
- 7 Single Impurity Scattering
- 8 Many-Impurity Scattering
- 9 Superfluid Response
- 10 Optical and Thermal Conductivities
- 11 Raman Spectroscopy
- 12 Nuclear Magnetic Resonance
- 13 Neutron Scattering Spectroscopy
- 14 Mixed State
- Appendix A Bogoliubov Transformation
- Appendix B Hohenberg Theorem
- Appendix C Degenerate Perturbation Theory
- Appendix D Anderson Theorem
- Appendix E Sommerfeld Expansion
- Appendix F Single-Particle Green’s Function
- Appendix G Linear Response Theory
- References
- Index
4 - Quasiparticle Excitation Spectra
Published online by Cambridge University Press: 17 June 2022
- Frontmatter
- Contents
- Preface
- Abbreviations
- 1 Introduction to Superconductivity
- 2 Microscopic Models for High Temperature Superconductors
- 3 Basic Properties of d-wave Superconductors
- 4 Quasiparticle Excitation Spectra
- 5 Tunneling Effect
- 6 Josephson Effect
- 7 Single Impurity Scattering
- 8 Many-Impurity Scattering
- 9 Superfluid Response
- 10 Optical and Thermal Conductivities
- 11 Raman Spectroscopy
- 12 Nuclear Magnetic Resonance
- 13 Neutron Scattering Spectroscopy
- 14 Mixed State
- Appendix A Bogoliubov Transformation
- Appendix B Hohenberg Theorem
- Appendix C Degenerate Perturbation Theory
- Appendix D Anderson Theorem
- Appendix E Sommerfeld Expansion
- Appendix F Single-Particle Green’s Function
- Appendix G Linear Response Theory
- References
- Index
Summary
Chapter 4 introduces the single-electron spectral function and the basic models for describing the measurement spectra of angle-resolved photoemission. It is shown that the photoemission density is proportional to the single-particle spectral function under the "sudden" approximation in the three-step model. This offers an irreplaceable tool for probing the momentum dependence of the energy gap as well as other single-particle properties of quasiparticle excitations. The Luttinger theorem, which relates the Fermi momentum with the filling factor of electrons, the particle-hole mixing, and the effect of quasiparticle scattering on the transport properties are also discussed.
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- D-wave Superconductivity , pp. 93 - 109Publisher: Cambridge University PressPrint publication year: 2022