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Topological insulators = Dirac equat...
~
Shen, Shun-Qing.
Topological insulators = Dirac equation in condensed matter /
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Topological insulators/ by Shun-Qing Shen.
Reminder of title:
Dirac equation in condensed matter /
Author:
Shen, Shun-Qing.
Published:
Singapore :Springer Singapore : : 2017.,
Description:
xiii, 266 p. :ill. (some col.), digital ; : 24 cm.;
Contained By:
Springer eBooks
Subject:
Electric insulators and insulation. -
Online resource:
http://dx.doi.org/10.1007/978-981-10-4606-3
ISBN:
9789811046063
Topological insulators = Dirac equation in condensed matter /
Shen, Shun-Qing.
Topological insulators
Dirac equation in condensed matter /[electronic resource] :by Shun-Qing Shen. - 2nd ed. - Singapore :Springer Singapore :2017. - xiii, 266 p. :ill. (some col.), digital ;24 cm. - Springer series in solid-state sciences,v.1870171-1873 ;. - Springer series in solid-state sciences ;153..
Introduction -- Starting from the Dirac equation -- Minimal lattice model for topological insulator -- Topological invariants -- Topological phases in one dimension -- Quantum anomalous Hall effect and Quantum spin Hall effect -- Three-dimensional topological insulators -- Impurities and defects in topological insulators -- Topological superconductors and superfluids -- Majorana fermions in topological insulators -- Topological Dirac and Weyl Semimetals -- Topological Anderson Insulator -- Summary: Symmetry and Topological Classification.
This new edition presents a unified description of these insulators from one to three dimensions based on the modified Dirac equation. It derives a series of solutions of the bound states near the boundary, and describes the current status of these solutions. Readers are introduced to topological invariants and their applications to a variety of systems from one-dimensional polyacetylene, to two-dimensional quantum spin Hall effect and p-wave superconductors, three-dimensional topological insulators and superconductors or superfluids, and topological Weyl semimetals, helping them to better understand this fascinating field. To reflect research advances in topological insulators, several parts of the book have been updated for the second edition, including: Spin-Triplet Superconductors, Superconductivity in Doped Topological Insulators, Detection of Majorana Fermions and so on. In particular, the book features a new chapter on Weyl semimetals, a topic that has attracted considerable attention and has already become a new hotpot of research in the community.
ISBN: 9789811046063
Standard No.: 10.1007/978-981-10-4606-3doiSubjects--Topical Terms:
580297
Electric insulators and insulation.
LC Class. No.: TK3401 / .S54 2017
Dewey Class. No.: 621.31937
Topological insulators = Dirac equation in condensed matter /
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Introduction -- Starting from the Dirac equation -- Minimal lattice model for topological insulator -- Topological invariants -- Topological phases in one dimension -- Quantum anomalous Hall effect and Quantum spin Hall effect -- Three-dimensional topological insulators -- Impurities and defects in topological insulators -- Topological superconductors and superfluids -- Majorana fermions in topological insulators -- Topological Dirac and Weyl Semimetals -- Topological Anderson Insulator -- Summary: Symmetry and Topological Classification.
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This new edition presents a unified description of these insulators from one to three dimensions based on the modified Dirac equation. It derives a series of solutions of the bound states near the boundary, and describes the current status of these solutions. Readers are introduced to topological invariants and their applications to a variety of systems from one-dimensional polyacetylene, to two-dimensional quantum spin Hall effect and p-wave superconductors, three-dimensional topological insulators and superconductors or superfluids, and topological Weyl semimetals, helping them to better understand this fascinating field. To reflect research advances in topological insulators, several parts of the book have been updated for the second edition, including: Spin-Triplet Superconductors, Superconductivity in Doped Topological Insulators, Detection of Majorana Fermions and so on. In particular, the book features a new chapter on Weyl semimetals, a topic that has attracted considerable attention and has already become a new hotpot of research in the community.
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