Terahertz electron paramagnetic resonance generalized spectroscopic ellipsometry: The magnetic response of the nitrogen defect in 4H-SiC

Author:

Schubert Mathias12ORCID,Knight Sean2ORCID,Richter Steffen23ORCID,Kühne Philipp2ORCID,Stanishev Vallery2ORCID,Ruder Alexander1ORCID,Stokey Megan1ORCID,Korlacki Rafał1ORCID,Irmscher Klaus4ORCID,Neugebauer Petr5ORCID,Darakchieva Vanya23ORCID

Affiliation:

1. Department of Electrical and Computer Engineering, University of Nebraska-Lincoln, Lincoln, Nebraska 68588, USA

2. Terahertz Materials Analysis Center and Center for III-N Technology, C3NiT-Janzèn, Department of Physics, Chemistry and Biology (IFM), Linköping University, 58183 Linköping, Sweden

3. Solid State Physics and NanoLund, Lund University, P. O. Box 118, S-221 00 Lund, Sweden

4. Leibniz-Institut für Kristallzüchtung, 12489 Berlin, Germany

5. CEITEC-Central European Institute of Technology, Brno University of Technology, Brno, Czech Republic

Abstract

We report on terahertz (THz) electron paramagnetic resonance generalized spectroscopic ellipsometry (THz-EPR-GSE). Measurements of field and frequency dependencies of magnetic response due to spin transitions associated with nitrogen defects in 4H-SiC are shown as an example. THz-EPR-GSE dispenses with the need of a cavity, permits independently scanning field and frequency parameters, and does not require field or frequency modulation. We investigate spin transitions of hexagonal ( h) and cubic ( k) coordinated nitrogen including coupling with its nuclear spin (I = 1), and we propose a model approach for the magnetic susceptibility to account for the spin transitions. From the THz-EPR-GSE measurements, we can fully determine polarization properties of the spin transitions, and we can obtain the k coordinated nitrogen g and hyperfine splitting parameters using magnetic field and frequency dependent Lorentzian oscillator line shape functions. Magnetic-field line broadening presently obscures access to h parameters. We show that measurements of THz-EPR-GSE at positive and negative fields differ fundamentally and hence provide additional information. We propose frequency-scanning THz-EPR-GSE as a versatile method to study properties of spins in solid state materials.

Funder

National Science Foundation

Air Force Office of Scientific Research

Vetenskapsrådet

Swedish Foundation for Strategic Research

VINNOVA

Swedish Government Strategic Research Area in Materials Science

Knut and Alice Wallenbergs Foundation

J.~A.~Woollam~Foundation

University of Nebraska Foundation

The European Union's Horizon 2020 Research and Innovation Program

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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