Electronic and Magnetic Excitations in Correlated and Topological Materials

Nonfiction, Science & Nature, Science, Other Sciences, Nanostructures, Technology, Superconductors & Superconductivity
Cover of the book Electronic and Magnetic Excitations in Correlated and Topological Materials by John S. Van Dyke, Springer International Publishing
View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart
Author: John S. Van Dyke ISBN: 9783319899381
Publisher: Springer International Publishing Publication: May 17, 2018
Imprint: Springer Language: English
Author: John S. Van Dyke
ISBN: 9783319899381
Publisher: Springer International Publishing
Publication: May 17, 2018
Imprint: Springer
Language: English

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.

View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart

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.

More books from Springer International Publishing

Cover of the book Landscape and Power in Geographical Space as a Social-Aesthetic Construct by John S. Van Dyke
Cover of the book The Nile River by John S. Van Dyke
Cover of the book New Frontiers in Mining Complex Patterns by John S. Van Dyke
Cover of the book The Bubble Theory by John S. Van Dyke
Cover of the book Applied Computing & Information Technology by John S. Van Dyke
Cover of the book Social Sciences for an Other Politics by John S. Van Dyke
Cover of the book Vulnerability and Long-term Care in Europe by John S. Van Dyke
Cover of the book A Psychology of Culture by John S. Van Dyke
Cover of the book Computational Color Imaging by John S. Van Dyke
Cover of the book New Sporting Femininities by John S. Van Dyke
Cover of the book Physical Play and Children’s Digital Games by John S. Van Dyke
Cover of the book Popper and His Popular Critics by John S. Van Dyke
Cover of the book Post-Agreement Northern Irish Literature by John S. Van Dyke
Cover of the book Liberation Technology in El Salvador by John S. Van Dyke
Cover of the book REACH Beyond Borders by John S. Van Dyke
We use our own "cookies" and third party cookies to improve services and to see statistical information. By using this website, you agree to our Privacy Policy