Vai al contenuto principale della pagina

Electronic and Magnetic Excitations in Correlated and Topological Materials [[electronic resource] /] / by John S. Van Dyke



(Visualizza in formato marc)    (Visualizza in BIBFRAME)

Autore: Van Dyke John S Visualizza persona
Titolo: Electronic and Magnetic Excitations in Correlated and Topological Materials [[electronic resource] /] / by John S. Van Dyke Visualizza cluster
Pubblicazione: Cham : , : Springer International Publishing : , : Imprint : Springer, , 2018
Edizione: 1st ed. 2018.
Descrizione fisica: 1 online resource (XII, 102 p. 72 illus., 69 illus. in color.)
Disciplina: 530.41
Soggetto topico: Superconductivity
Superconductors
Nanoscale science
Nanoscience
Nanostructures
Spectroscopy
Microscopy
Quantum computers
Spintronics
Strongly Correlated Systems, Superconductivity
Nanoscale Science and Technology
Spectroscopy and Microscopy
Quantum Information Technology, Spintronics
Nota di contenuto: Introduction -- Superconducting Gap in CeCoIn5 -- Pairing Mechanism in CeCoIn5 -- Real and Momentum Space Probes in CeCoIn5: Defect States in Differential Conductance and Neutron Scattering Spin Resonance -- Transport in Nanoscale Kondo Lattices -- Charge and Spin Currents in Nanoscale Topological Insulators -- Conclusions -- Appendix: Keldysh Formalism for Transport.
Sommario/riassunto: This thesis reports a major breakthrough in discovering the superconducting mechanism in CeCoIn5, the “hydrogen atom” among heavy fermion compounds. By developing a novel theoretical formalism, the study described herein succeeded in extracting the crucial missing element of superconducting pairing interaction from scanning tunneling spectroscopy experiments. This breakthrough provides a theoretical explanation for a series of puzzling experimental observations, demonstrating that strong magnetic interactions provide the quantum glue for unconventional superconductivity. Additional insight into the complex properties of strongly correlated and topological materials was provided by investigating their non-equilibrium charge and spin transport properties. The findings demonstrate that the interplay of magnetism and disorder with strong correlations or topology leads to complex and novel behavior that can be exploited to create the next generation of spin electronics and quantum computing devices.
Titolo autorizzato: Electronic and Magnetic Excitations in Correlated and Topological Materials  Visualizza cluster
ISBN: 3-319-89938-4
Formato: Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione: Inglese
Record Nr.: 9910300528303321
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Serie: Springer Theses, Recognizing Outstanding Ph.D. Research, . 2190-5053