Fr. 179.00

Towards a Scalable Quantum Computing Platform in the Ultrastrong Coupling Regime

Inglese · Copertina rigida

Spedizione di solito entro 6 a 7 settimane

Descrizione

Ulteriori informazioni

This thesis devotes three introductory chapters to outlining basic recipes for constructing the quantum Hamiltonian of an arbitrary superconducting circuit, starting from classical circuit design. Since a superconducting circuit is one of the most promising platforms for realizing a practical quantum computer, anyone who is starting out in the field will benefit greatly from this introduction. The second focus of the introduction is the ultrastrong light-matter interaction (USC), where the latest developments are described. This is followed by three main research works comprising quantum memory in USC; scaling up the 1D circuit to a 2D lattice configuration; creation of Noisy Intermediate-Scale Quantum era quantum error correction codes and polariton-mediated qubit-qubit interaction. The research work detailed in this thesis will make a major contribution to the development of quantum random access memory, a prerequisite for various quantum machine learningalgorithms and applications.

Sommario

Introduction.- Basics of superconducting circuits architecture.- Ultrastrong light-matter interaction.- Quantum error correcting codes in the USC regime.- Quantum memory in the USC regime.- Catalytic quantum Rabi model.- Conclusion and Future Work.- Appendix.

Riassunto

This thesis devotes three introductory chapters to outlining basic recipes for constructing the quantum Hamiltonian of an arbitrary superconducting circuit, starting from classical circuit design. Since a superconducting circuit is one of the most promising platforms for realizing a practical quantum computer, anyone who is starting out in the field will benefit greatly from this introduction. The second focus of the introduction is the ultrastrong light-matter interaction (USC), where the latest developments are described. This is followed by three main research works comprising quantum memory in USC; scaling up the 1D circuit to a 2D lattice configuration; creation of Noisy Intermediate-Scale Quantum era quantum error correction codes and polariton-mediated qubit-qubit interaction. The research work detailed in this thesis will make a major contribution to the development of quantum random access memory, a prerequisite for various quantum machine learningalgorithms and applications.

Dettagli sul prodotto

Autori Thi Ha Kyaw
Editore Springer, Berlin
 
Lingue Inglese
Formato Copertina rigida
Pubblicazione 01.01.2019
 
EAN 9783030196578
ISBN 978-3-0-3019657-8
Pagine 116
Dimensioni 161 mm x 243 mm x 14 mm
Peso 354 g
Illustrazioni XIX, 116 p. 50 illus., 41 illus. in color.
Serie Springer Theses
Categorie Scienze naturali, medicina, informatica, tecnica > Tecnica > Meccanica, tecnica di produzione

B, Atoms, Physics, Quantum Computing, Quantum Physics, Quantum physics (quantum mechanics & quantum field theory), Physics and Astronomy, Electronic devices & materials, Mathematical theory of computation, Quantum computers, Plasma Physics, Strongly Correlated Systems, Superconductivity, Superconductivity, Superconductors, Spintronics, Quantum Information Technology, Spintronics

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