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The Quantum Spin Hall Effect: Theory and Experiment

Journal of the Physical Society of Japan · 2008 · Vol. 77(3) · pp. 031007–031007
Markus KönigH. BuhmannL. W. MolenkampTaylor L. HughesChao‐Xing LiuXiao-Liang QiShou-Cheng Zhang

Abstract

The search for topologically non-trivial states of matter has become an important goal for condensed matter physics. Recently, a new class of topological insulators has been proposed. These topological insulators have an insulating gap in the bulk, but have topologically protected edge states due to the time reversal symmetry. In two dimensions the helical edge states give rise to the quantum spin Hall (QSH) effect, in the absence of any external magnetic field. Here we review a recent theory which predicts that the QSH state can be realized in HgTe/CdTe semiconductor quantum wells. By varying the thickness of the quantum well, the band structure changes from a normal to an “inverted” type at a critical thickness dc. We present an analytical solution of the helical edge states and explicitly demonstrate their topological stability. We also review the recent experimental observation of the QSH state in HgTe/(Hg,Cd)Te quantum wells. We review both the fabrication of the sample and the experimental setup. For thin quantum wells with well width dQW < 6.3 nm, the insulating regime shows the conventional behavior of vanishingly small conductance at low temperature. However, for thicker quantum wells (dQW> 6.3 nm), the nominally insulating regime shows a plateau of residual conductance close to 2e 2 /h. The residual conductance is independent of the sample width, indicating that it is caused by edge states. Furthermore, the residual conductance is destroyed by a small external magnetic field. The quantum phase transition at the critical thickness, dc = 6.3 nm, is also independently determined from the occurrence of a magnetic field induced insulator to metal transition. 1 1

Quantum and electron transport phenomenaTopological Materials and PhenomenaGraphene research and applicationsQuantum Hall effectQuantum spin Hall effectCondensed matter physicsSpin (aerodynamics)PhysicsSpin Hall effectQuantum mechanicsMagnetic fieldElectronSpin polarization
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References
Band structure of indium antimonide
Journal of Physics and Chemistry of Solids · 1957 · 3,659 citations
Topological Insulators in Three Dimensions
Physical Review Letters · 2007 · 4,579 citations
Absence of neutrinos on a lattice
Nuclear Physics B · 1981 · 1,629 citations
Topological invariants of time-reversal-invariant band structures
Physical Review B · 2007 · 2,323 citations
The rise of graphene
Nature Materials · 2007 · 39,026 citations
Quantum Spin Hall Effect in Graphene
Physical Review Letters · 2005 · 7,975 citations
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