Quantum Information Meets Quantum Matter From Quantum Entanglement to Topological Phases of Many-Body Systems

This book approaches condensed matter physics from the perspective of quantum information science, focusing on systems with strong interaction and unconventional order for which the usual condensed matter methods like the Landau paradigm or the free fermion framework break down. Concepts and tools i...

Full description

Bibliographic Details
Main Authors: Zeng, Bei, Chen, Xie (Author), Zhou, Duan-Lu (Author), Wen, Xiao-Gang (Author)
Format: eBook
Language:English
Published: New York, NY Springer New York 2019, 2019
Edition:1st ed. 2019
Series:Quantum Science and Technology
Subjects:
Online Access:
Collection: Springer eBooks 2005- - Collection details see MPG.ReNa
LEADER 03630nmm a2200373 u 4500
001 EB001864594
003 EBX01000000000000001028685
005 00000000000000.0
007 cr|||||||||||||||||||||
008 190425 ||| eng
020 |a 9781493990849 
100 1 |a Zeng, Bei 
245 0 0 |a Quantum Information Meets Quantum Matter  |h Elektronische Ressource  |b From Quantum Entanglement to Topological Phases of Many-Body Systems  |c by Bei Zeng, Xie Chen, Duan-Lu Zhou, Xiao-Gang Wen 
250 |a 1st ed. 2019 
260 |a New York, NY  |b Springer New York  |c 2019, 2019 
300 |a XXII, 364 p. 192 illus., 110 illus. in color  |b online resource 
505 0 |a Part I Basic Concepts in Quantum Information Theory -- 1 Correlation and Entanglement -- 2 Evolution of Quantum Systems -- 3 Quantum Error-Correcting Codes -- Part II Local Hamiltonians, Ground States and Many-body Entanglement -- 4 Local Hamiltonians and Ground States -- 5 Gapped Quantum Systems and Entanglement Area Law -- Part III Topological order and Long-Range Entanglement -- 6 Introduction to Topological order -- 7 Local Transformations and Long-Range Entanglement -- Part IV Gapped Topological Phases and Tensor Network -- 8 Matrix Product State and 1D Gapped Phase -- 9 Tensor Product States and 2D Gapped Phases -- 10 Symmetry Protected Topological Phases -- Part V Outlook -- 11 A Unification of Information and Matter 
653 |a Quantum Physics 
653 |a Quantum computers 
653 |a Spintronics 
653 |a Condensed Matter Physics 
653 |a Quantum Computing 
653 |a Quantum physics 
653 |a Condensed matter 
700 1 |a Chen, Xie  |e [author] 
700 1 |a Zhou, Duan-Lu  |e [author] 
700 1 |a Wen, Xiao-Gang  |e [author] 
041 0 7 |a eng  |2 ISO 639-2 
989 |b Springer  |a Springer eBooks 2005- 
490 0 |a Quantum Science and Technology 
028 5 0 |a 10.1007/978-1-4939-9084-9 
856 4 0 |u https://doi.org/10.1007/978-1-4939-9084-9?nosfx=y  |x Verlag  |3 Volltext 
082 0 |a 620.19 
520 |a This book approaches condensed matter physics from the perspective of quantum information science, focusing on systems with strong interaction and unconventional order for which the usual condensed matter methods like the Landau paradigm or the free fermion framework break down. Concepts and tools in quantum information science such as entanglement, quantum circuits, and the tensor network representation prove to be highly useful in studying such systems. The goal of this book is to introduce these techniques and show how they lead to a new systematic way of characterizing and classifying quantum phases in condensed matter systems. The first part of the book introduces some basic concepts in quantum information theory which are then used to study the central topic explained in Part II: local Hamiltonians and their ground states. Part III focuses on one of the major new phenomena in strongly interacting systems, the topological order, and shows how it can essentially be definedand characterized in terms of entanglement. Part IV shows that the key entanglement structure of topological states can be captured using the tensor network representation, which provides a powerful tool in the classification of quantum phases. Finally, Part V discusses the exciting prospect at the intersection of quantum information and condensed matter physics – the unification of information and matter. Intended for graduate students and researchers in condensed matter physics, quantum information science and related fields, the book is self-contained and no prior knowledge of these topics is assumed