Publication | Open Access
Experimental evidence of crystal symmetry protection for the topological nodal line semimetal state in ZrSiS
24
Citations
44
References
2019
Year
EngineeringTopological MaterialsTopological Quantum StateTopological MagnetismTopological PhysicsQuantum MaterialsTopological PhasesQuantum MatterCrystal Symmetry ProtectionQuantum SciencePhysicsTopological MaterialTopological PhaseTunable SymmetryCrystallographyCondensed Matter TheoryExperimental EvidenceCrystal SymmetriesNatural SciencesTopological InsulatorApplied PhysicsCondensed Matter Physics
Tunable symmetry breaking plays a crucial role for the manipulation of topological phases of quantum matter. Here, through combined high-pressure magnetotransport measurements, Raman spectroscopy, and x-ray diffraction, we demonstrate a pressure-induced topological phase transition in nodal-line semimetal ZrSiS. Symmetry analysis and first-principles calculations suggest that this pressure-induced topological phase transition may be attributed to weak lattice distortions by nonhydrostatic compression, which breaks some crystal symmetries, such as the mirror and inversion symmetries. This finding provides some experimental evidence for crystal symmetry protection for the topological semimetal state, which is at the heart of topological relativistic fermion physics.
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