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Valley Splitting in Silicon from the Interference Pattern of Quantum Oscillations

Authors :
Lodari, M. (author)
Lampert, L. (author)
Zietz, O. (author)
Pillarisetty, R. (author)
Clarke, J. S. (author)
Scappucci, G. (author)
Lodari, M. (author)
Lampert, L. (author)
Zietz, O. (author)
Pillarisetty, R. (author)
Clarke, J. S. (author)
Scappucci, G. (author)
Publication Year :
2022

Abstract

We determine the energy splitting of the conduction-band valleys in two-dimensional electrons confined in silicon metal oxide semiconductor Hall-bar transistors. These silicon metal oxide semiconductor Hall bars are made by advanced semiconductor manufacturing on 300 mm silicon wafers and support a two-dimensional electron gas of high quality with a maximum mobility of 17.6×103 cm2/Vs and minimum percolation density of 3.45×1010 cm-2. Because of the low disorder, we observe beatings in the Shubnikov-de Haas oscillations that arise from the energy splitting of the two low-lying conduction band valleys. From the analysis of the oscillations beating patterns up to T=1.7 K, we estimate a maximum valley splitting of ?EVS=8.2 meV at a density of 6.8×1012 cm-2. Furthermore, the valley splitting increases with density at a rate consistent with theoretical predictions for a near-ideal semiconductor-oxide interface.<br />QCD/Scappucci Lab

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1357878557
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1103.PhysRevLett.128.176603