
Quantum State Transfer and Network Engineering
Springer (Publisher)
Published on 7. November 2013
Book
Hardback
X, 250 pages
978-3-642-39936-7 (ISBN)
Description
Faithful communication is a necessary precondition for large-scale quantum information processing and networking, irrespective of the physical platform. Thus, the problems of quantum-state transfer and quantum-network engineering have attracted enormous interest over the last years, and constitute one of the most active areas of research in quantum information processing. The present volume introduces the reader to fundamental concepts and various aspects of this exciting research area, including links to other related areas and problems. The implementation of state-transfer schemes and the engineering of quantum networks are discussed in the framework of various quantum optical and condensed matter systems, emphasizing the interdisciplinary character of the research area. Each chapter is a review of theoretical or experimental achievements on a particular topic, written by leading scientists in the field. The volume aims at both newcomers as well as experienced researchers.
More details
Series
Edition
2014 ed.
Language
English
Place of publication
Berlin
Germany
Publishing group
Springer Berlin
Target group
Professional and scholarly
Research
Illustrations
12 s/w Abbildungen, 68 farbige Abbildungen
X, 250 p. 80 illus., 68 illus. in color.
Dimensions
Height: 241 mm
Width: 160 mm
Thickness: 19 mm
Weight
559 gr
ISBN-13
978-3-642-39936-7 (9783642399367)
DOI
10.1007/978-3-642-39937-4
Schweitzer Classification
Other editions
Additional editions

Georgios M. Nikolopoulos | Igor Jex
Quantum State Transfer and Network Engineering
Book
08/2016
Springer
€106.99
Shipment within 7-9 days

Georgios M. Nikolopoulos | Igor Jex
Quantum State Transfer and Network Engineering
E-Book
10/2013
1st Edition
Springer
€96.29
Available for download
Content
Spin Chains as Data Buses, Logic Buses and Entanglers.- Communication in Engineered Quantum Networks.- Dual- and Multi-rail Encoding.- Quantum State Transfer with Limited Resources.- Robustness of Spin-chain State-transfer Schemes.- Implementation of State Transfer Hamiltonians in Spin Chains with Magnetic Resonance Techniques.- State Transfer Hamiltonians in Photonic Lattices.