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Main Authors: Weißhaupt, David, Sürgers, Christoph, Bloos, Dominik, Funk, Hannes Simon, Oehme, Michael, Fischer, Gerda, Schubert, Markus Andreas, Wenger, Christian, van Slageren, Joris, Fischer, Inga Anita, Schulze, Jörg
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2408.07412
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author Weißhaupt, David
Sürgers, Christoph
Bloos, Dominik
Funk, Hannes Simon
Oehme, Michael
Fischer, Gerda
Schubert, Markus Andreas
Wenger, Christian
van Slageren, Joris
Fischer, Inga Anita
Schulze, Jörg
author_facet Weißhaupt, David
Sürgers, Christoph
Bloos, Dominik
Funk, Hannes Simon
Oehme, Michael
Fischer, Gerda
Schubert, Markus Andreas
Wenger, Christian
van Slageren, Joris
Fischer, Inga Anita
Schulze, Jörg
contents Ge two-dimensional hole gases in strained modulation-doped quantum-wells represent a promising material platform for future spintronic applications due to their excellent spin transport properties and the theoretical possibility of efficient spin manipulation. Due to the continuous development of epitaxial growth recipes extreme high hole mobilities and low effective masses can be achieved, promising an efficient spin transport. Furthermore, the Ge two-dimensional hole gas (2DHG) can be integrated in the well-established industrial complementary metal-oxide-semiconductor (CMOS) devices technology. However, efficient electrical spin injection into a Ge 2DHG - a prerequisite for the realization of spintronic devices - has not yet been demonstrated. In this work, we report the fabrication and low-temperature magnetoresistance measurements of a laterally structured Mn5Ge3/Ge 2DHG/ Mn5Ge3 device. The ferromagnetic Mn5Ge3 contacts are grown directly into the Ge quantum well by means of an interdiffusion process with a spacing of approximately 130 nm. We observe a magnetoresistance signal for temperatures below 13 K possibly arising from successful spin injection. The results represent a step forward toward the realization of CMOS compatible spintronic devices based on a 2DHG.
format Preprint
id arxiv_https___arxiv_org_abs_2408_07412
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Lateral Mn5Ge3 spin-valve in contact with a high-mobility Ge two-dimensional hole gas
Weißhaupt, David
Sürgers, Christoph
Bloos, Dominik
Funk, Hannes Simon
Oehme, Michael
Fischer, Gerda
Schubert, Markus Andreas
Wenger, Christian
van Slageren, Joris
Fischer, Inga Anita
Schulze, Jörg
Mesoscale and Nanoscale Physics
Materials Science
Ge two-dimensional hole gases in strained modulation-doped quantum-wells represent a promising material platform for future spintronic applications due to their excellent spin transport properties and the theoretical possibility of efficient spin manipulation. Due to the continuous development of epitaxial growth recipes extreme high hole mobilities and low effective masses can be achieved, promising an efficient spin transport. Furthermore, the Ge two-dimensional hole gas (2DHG) can be integrated in the well-established industrial complementary metal-oxide-semiconductor (CMOS) devices technology. However, efficient electrical spin injection into a Ge 2DHG - a prerequisite for the realization of spintronic devices - has not yet been demonstrated. In this work, we report the fabrication and low-temperature magnetoresistance measurements of a laterally structured Mn5Ge3/Ge 2DHG/ Mn5Ge3 device. The ferromagnetic Mn5Ge3 contacts are grown directly into the Ge quantum well by means of an interdiffusion process with a spacing of approximately 130 nm. We observe a magnetoresistance signal for temperatures below 13 K possibly arising from successful spin injection. The results represent a step forward toward the realization of CMOS compatible spintronic devices based on a 2DHG.
title Lateral Mn5Ge3 spin-valve in contact with a high-mobility Ge two-dimensional hole gas
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2408.07412