g-factor of topological states from magnetooptical spectroscopy and quantum oscillations in Pb<sub>1-x</sub>Sn<sub>x</sub>Se quantum well
ORAL
Abstract
Large g-factors in system with strong spin-orbit coupling are ideal for spintronic and quantum computing devices. Here, we report the high g-factor of the surface state in Pb1-xSnxSe quantum wells. We successfully grow high quality Pb0.85Eu0.15Se/Pb0.7Sn0.3Se/ Pb0.85Eu0.15Se single quantum wells with mobility larger than 4000cm2V-1s-1. The high carrier mobility allows us to reach the quantum limit at reasonably achievable magnetic fields. We exploit this advantage to combine magnetooptical Landau level spectroscopy, Shubnikov-de-Haas transport measurement and consistent modelling of the two experiments to precisely extract the band parameters of the topological states of this system along with their spin and orbital g-factor. The obtained effective g-factor (g~80 at 1T for index n=1) is comparable with what is found for the InSb system, and is much larger than the InAs system (~15). This information is vital to the realization and understanding of novel quantized Hall effect stemming from this material family, and also shed light onto their future applications to quantum devices utilizing topological surface states.
*Work support by NSF-DMR-1905277. A portion of this work was performed at the National High Magnetic Field Laboratory, which is supported by National Science Foundation Cooperative Agreement No. DMR-1644779 and the State of Florida.
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Presenters
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Jiashu Wang
- University of Notre Dame