Published 2 Jun 2022 in cond-mat.str-el, cond-mat.mtrl-sci, and physics.comp-ph | (2206.01159v1)
Abstract: Symmetry-protected non-trivial states in chiral topological materials hold immense potential for fundamental science and technological advances. Here, we report electrical transport, quantum oscillations, and electronic structure results of a single crystal of chiral quantum material PtAl. Based on the de Haas-van Alphen (dHvA) oscillations, we show that the smallest Fermi pocket (α) possesses a non-trivial Berry phase $1.16$$\pi.ThebandassociatedwiththisFermipocketcarriesalinearenergydispersionoverasubstantialenergywindowof\sim$700 meV that is further consistent with the calculated optical conductivity. First-principles calculations unfold that $\rm PtAlisahigher−foldchiralfermionsemimetalwherestructuralchiralitydrivesthechiralfermionstolieatthehigh−symmetry\GammaandRpointsofthecubicBrillouinzone.Intheabsenceofspin−orbitcoupling,thebandcrossingsat\Gammaand\rm Rpointsarethree−andfour−folddegeneratewithachiralchargeof-2and+2,respectively.Theinclusionofspin−orbitcouplingtransformsthesecrossingpointsintofour−andsix−folddegeneratepointswithachiralchargeof-4and+4.Nontrivialsurfacestatesonthe(001)$ plane connect the bulk projected chiral points through the long helical Fermi arcs that spread over the entire Brillouin zone.