Spin-dependent photovoltage in graphene/MoS2-based field-effect transistors

Fuente: arXiv
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Main Authors: Dinar, K., Delgado-Notario, J., Bray, C., Maussang, K., Perez-Martin, E., Benhamou-Bui, B., Consejo, C., Ruffenach, S., Krishtopenko, S. S., Bonnet, L., Paillet, M., Torres, J., Meziani, Y. M., Rozhansky, I., Jouault, B., Nanot, S., Teppe, F.
Format: Preprint
Published: 2024
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_version_ 1866908368047702016
author Dinar, K.
Delgado-Notario, J.
Bray, C.
Maussang, K.
Perez-Martin, E.
Benhamou-Bui, B.
Consejo, C.
Ruffenach, S.
Krishtopenko, S. S.
Bonnet, L.
Paillet, M.
Torres, J.
Meziani, Y. M.
Rozhansky, I.
Jouault, B.
Nanot, S.
Teppe, F.
author_facet Dinar, K.
Delgado-Notario, J.
Bray, C.
Maussang, K.
Perez-Martin, E.
Benhamou-Bui, B.
Consejo, C.
Ruffenach, S.
Krishtopenko, S. S.
Bonnet, L.
Paillet, M.
Torres, J.
Meziani, Y. M.
Rozhansky, I.
Jouault, B.
Nanot, S.
Teppe, F.
contents It has recently been shown that Terahertz sensors can effectively detect the spin resonances of Dirac fermions in graphene. The associated photovoltaic measurement technique allows for the investigation of the intrinsic spin-orbit coupling in graphene as well as its topological properties from microwave to Terahertz frequencies. In this work, using graphene/MoS2-based Field-Effect Transistors, we observed a magnetic resonance photovoltage signal in the Gigahertz range that is independent of the gate bias. The dispersion of the associated spin-flip transitions remains intriguingly unaffected by the MoS2 layer. In parallel, the spin-related signal consistently appears as a drop in photovoltage, regardless of the signal's polarity or origin, whether it arises from plasma wave rectification or thermoelectric effects. This behavior is interpreted as a decrease in the system's spin polarization due to spin-dependent recombination or scattering of photocarriers. Understanding the various photovoltaic signals in highly sensitive Gigahertz/Terahertz sensors paves the way for exploring spin-dependent mechanisms in two-dimensional quantum materials, influenced by proximity effects such as spin-orbit coupling, topology, and magnetism.
format Preprint
id arxiv_https___arxiv_org_abs_2411_16328
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Spin-dependent photovoltage in graphene/MoS2-based field-effect transistors
Dinar, K.
Delgado-Notario, J.
Bray, C.
Maussang, K.
Perez-Martin, E.
Benhamou-Bui, B.
Consejo, C.
Ruffenach, S.
Krishtopenko, S. S.
Bonnet, L.
Paillet, M.
Torres, J.
Meziani, Y. M.
Rozhansky, I.
Jouault, B.
Nanot, S.
Teppe, F.
Mesoscale and Nanoscale Physics
Materials Science
Other Condensed Matter
It has recently been shown that Terahertz sensors can effectively detect the spin resonances of Dirac fermions in graphene. The associated photovoltaic measurement technique allows for the investigation of the intrinsic spin-orbit coupling in graphene as well as its topological properties from microwave to Terahertz frequencies. In this work, using graphene/MoS2-based Field-Effect Transistors, we observed a magnetic resonance photovoltage signal in the Gigahertz range that is independent of the gate bias. The dispersion of the associated spin-flip transitions remains intriguingly unaffected by the MoS2 layer. In parallel, the spin-related signal consistently appears as a drop in photovoltage, regardless of the signal's polarity or origin, whether it arises from plasma wave rectification or thermoelectric effects. This behavior is interpreted as a decrease in the system's spin polarization due to spin-dependent recombination or scattering of photocarriers. Understanding the various photovoltaic signals in highly sensitive Gigahertz/Terahertz sensors paves the way for exploring spin-dependent mechanisms in two-dimensional quantum materials, influenced by proximity effects such as spin-orbit coupling, topology, and magnetism.
title Spin-dependent photovoltage in graphene/MoS2-based field-effect transistors
topic Mesoscale and Nanoscale Physics
Materials Science
Other Condensed Matter
url https://arxiv.org/abs/2411.16328