Spin-valley polarization control in WSe$_2$ monolayers using photochemical doping

Fuente: arXiv
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Autores principales: Katsipoulaki, E., Mourzidis, K., Jindal, V., Lagarde, D., Taniguchi, T., Watanabe, K., Kopidakis, G., Marie, X., Glazov, M. M., Stratakis, E., Kioseoglou, G., Paradisanos, I.
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Publicado: 2025
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author Katsipoulaki, E.
Mourzidis, K.
Jindal, V.
Lagarde, D.
Taniguchi, T.
Watanabe, K.
Kopidakis, G.
Marie, X.
Glazov, M. M.
Stratakis, E.
Kioseoglou, G.
Paradisanos, I.
author_facet Katsipoulaki, E.
Mourzidis, K.
Jindal, V.
Lagarde, D.
Taniguchi, T.
Watanabe, K.
Kopidakis, G.
Marie, X.
Glazov, M. M.
Stratakis, E.
Kioseoglou, G.
Paradisanos, I.
contents We report on the influence of a photochemical doping method on the spin-valley polarization degree ($P_{c}$) of excitons in WSe$_2$ monolayers. By varying the carrier density and transitioning from an excess of electrons (n-type) to an excess of holes (p-type), we observe a non-monotonic dependence of $P_{c}$ on the doping level. Using controlled, single-shot photochlorination steps, we unveil this non-monotonic behavior, with $P_{c}$ reaching a minimum value of less than 10$\%$ at 78 K near the charge neutrality point, while increasing by a factor of three at a hole density of $5 \times 10^{11} \,\mathrm{cm^{-2}}$. The impact of the doping on $P_{c}$ is explained using a phenomenological model that accounts for various mechanisms influencing exciton polarization dynamics, including exciton-carrier scattering processes and exciton-to-trion conversion rates. Among these, exciton-carrier collisions emerge as the dominant mechanism driving the observed variations in $P_{c}$, while the exciton effective lifetime remains nearly independent of doping. These findings highlight the potential of photochemical methods for investigating valley physics and for effectively tuning the exciton polarization degree in transition metal dichalcogenide monolayers.
format Preprint
id arxiv_https___arxiv_org_abs_2502_03049
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Spin-valley polarization control in WSe$_2$ monolayers using photochemical doping
Katsipoulaki, E.
Mourzidis, K.
Jindal, V.
Lagarde, D.
Taniguchi, T.
Watanabe, K.
Kopidakis, G.
Marie, X.
Glazov, M. M.
Stratakis, E.
Kioseoglou, G.
Paradisanos, I.
Mesoscale and Nanoscale Physics
Materials Science
We report on the influence of a photochemical doping method on the spin-valley polarization degree ($P_{c}$) of excitons in WSe$_2$ monolayers. By varying the carrier density and transitioning from an excess of electrons (n-type) to an excess of holes (p-type), we observe a non-monotonic dependence of $P_{c}$ on the doping level. Using controlled, single-shot photochlorination steps, we unveil this non-monotonic behavior, with $P_{c}$ reaching a minimum value of less than 10$\%$ at 78 K near the charge neutrality point, while increasing by a factor of three at a hole density of $5 \times 10^{11} \,\mathrm{cm^{-2}}$. The impact of the doping on $P_{c}$ is explained using a phenomenological model that accounts for various mechanisms influencing exciton polarization dynamics, including exciton-carrier scattering processes and exciton-to-trion conversion rates. Among these, exciton-carrier collisions emerge as the dominant mechanism driving the observed variations in $P_{c}$, while the exciton effective lifetime remains nearly independent of doping. These findings highlight the potential of photochemical methods for investigating valley physics and for effectively tuning the exciton polarization degree in transition metal dichalcogenide monolayers.
title Spin-valley polarization control in WSe$_2$ monolayers using photochemical doping
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2502.03049