Transition from Optically Excited to Intrinsic Spin Polarization in WSe$_2$

Fuente: arXiv
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Main Authors: Hedwig, Sebastian, Zinke, Gregor, Braun, Jürgen, Arnoldi, Benito, Pulkkinen, Aki, Minár, Ján, Ebert, Hubert, Aeschlimann, Martin, Stadtmüller, Benjamin
Format: Preprint
Published: 2025
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author Hedwig, Sebastian
Zinke, Gregor
Braun, Jürgen
Arnoldi, Benito
Pulkkinen, Aki
Minár, Ján
Ebert, Hubert
Aeschlimann, Martin
Stadtmüller, Benjamin
author_facet Hedwig, Sebastian
Zinke, Gregor
Braun, Jürgen
Arnoldi, Benito
Pulkkinen, Aki
Minár, Ján
Ebert, Hubert
Aeschlimann, Martin
Stadtmüller, Benjamin
contents Layered 2D van der Waals materials, such as transition metal dichalcogenides, are promising for nanoscale spintronic and optoelectronic applications. Harnessing their full potential requires understanding both intrinsic transport and the dynamics of optically excited spin and charge carriers -- particularly the transition between excited spin polarization and the conduction band's intrinsic spin texture. Here, we investigate the spin polarization of the conduction bands of bulk WSe$_2$ using static and time-resolved spin-resolved photoemission spectroscopy, complemented by photocurrent calculations. Electron doping reveals the intrinsic spin polarization, while time-resolved measurements trace the evolution of excited spin carriers. We find that intervalley scattering is spin-conserving, with spin transport initially governed by photoexcited carriers and aligning with the intrinsic conduction band polarization after $\sim$150 fs.
format Preprint
id arxiv_https___arxiv_org_abs_2506_00161
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Transition from Optically Excited to Intrinsic Spin Polarization in WSe$_2$
Hedwig, Sebastian
Zinke, Gregor
Braun, Jürgen
Arnoldi, Benito
Pulkkinen, Aki
Minár, Ján
Ebert, Hubert
Aeschlimann, Martin
Stadtmüller, Benjamin
Mesoscale and Nanoscale Physics
Layered 2D van der Waals materials, such as transition metal dichalcogenides, are promising for nanoscale spintronic and optoelectronic applications. Harnessing their full potential requires understanding both intrinsic transport and the dynamics of optically excited spin and charge carriers -- particularly the transition between excited spin polarization and the conduction band's intrinsic spin texture. Here, we investigate the spin polarization of the conduction bands of bulk WSe$_2$ using static and time-resolved spin-resolved photoemission spectroscopy, complemented by photocurrent calculations. Electron doping reveals the intrinsic spin polarization, while time-resolved measurements trace the evolution of excited spin carriers. We find that intervalley scattering is spin-conserving, with spin transport initially governed by photoexcited carriers and aligning with the intrinsic conduction band polarization after $\sim$150 fs.
title Transition from Optically Excited to Intrinsic Spin Polarization in WSe$_2$
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2506.00161