Publication | Closed Access
Polarization and Broken Symmetry due to Anisotropic “Triaxial” Strain States in Lattice-Mismatched Quantum Wires
27
Citations
6
References
1998
Year
Quantum Lattice SystemEngineeringMagnetic ResonanceMagnetismLattice-mismatched Quantum WiresQuantum MaterialsMagnetic Topological InsulatorNonbiaxial NatureStrain StatesAnisotropic MaterialMaterials ScienceQuantum ScienceBroken SymmetryPhysicsPolarization AnalysisSolid-state PhysicQuantum MagnetismSpintronicsNatural SciencesApplied PhysicsCondensed Matter Physics
Strain states in buried lattice-mismatched quantum wires are studied by polarization analysis with high magnetic fields. Remarkably large in-plane polarization anisotropy is observed, which remains even in very high fields. These results cannot be explained by the isotropic biaxial strain picture, and theoretical calculations show that it is attributed to nonbiaxial (anisotropic triaxial) strain, the symmetry of which is broken. Circular polarization experiments show that Zeeman splitting is highly nonlinear to the field, which is also theoretically explained by the nonbiaxial nature of strain.
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