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Spin polarization detection via chirality-induced tunneling currents in indium selenide
Pasquale, Gabriele, de Faria Junior, Paulo Eduardo
, Feng, Shun, Collette, Eloi, Watanabe, Kenji
, Taniguchi, Takashi, Fabian, Jaroslav
und Kis, Andras
(2025)
Spin polarization detection via chirality-induced tunneling currents in indium selenide.
Nature Materials 24, S. 212-218.
Veröffentlichungsdatum dieses Volltextes: 12 Nov 2025 15:14
Artikel
DOI zum Zitieren dieses Dokuments: 10.5283/epub.78133
Zusammenfassung
Chirality, a basic property of symmetry breaking, is crucial for fields such as biology and physics. Recent advances in the study of chiral systems have stimulated interest in the discovery of symmetry-breaking states that enable exotic phenomena such as spontaneous gyrotropic order and superconductivity. Here we examine the interaction between light chirality and electron spins in indium ...
Chirality, a basic property of symmetry breaking, is crucial for fields such as biology and physics. Recent advances in the study of chiral systems have stimulated interest in the discovery of symmetry-breaking states that enable exotic phenomena such as spontaneous gyrotropic order and superconductivity. Here we examine the interaction between light chirality and electron spins in indium selenide and study the effect of magnetic field on emerging tunnelling photocurrents at the Van Hove singularity. Although the effect is symmetric under linearly polarized light excitation, a non-symmetric signal emerges when the excitation is circularly polarized, making it possible to electrically detect light’s chirality. Our study shows a negligible out-of-plane g-factor for few-layer indium selenide at the valence band edge, resulting in an unbalanced Zeeman splitting in hexagonal boron nitride spin bands. This finding allows us to measure the change in energy barrier height with exceptional resolution (~15 μeV). Furthermore, we confirm the long-standing theoretical prediction of spin-polarized hole accumulation in the flat valence band at increasing laser powers.
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| Dokumentenart | Artikel | ||||
| Titel eines Journals oder einer Zeitschrift | Nature Materials | ||||
| Verlag: | Springer Nature | ||||
|---|---|---|---|---|---|
| Band: | 24 | ||||
| Seitenbereich: | S. 212-218 | ||||
| Datum | 8 Januar 2025 | ||||
| Institutionen | Physik > Institut für Theoretische Physik > Lehrstuhl Professor Richter > Arbeitsgruppe Jaroslav Fabian | ||||
| Projekte |
Gefördert von:
Europäische Kommission (EU)
(881603)
Gefördert von:
Deutsche Forschungsgemeinschaft (DFG)
(314695032)
Gefördert von:
Deutsche Forschungsgemeinschaft (DFG)
(443416183)
| ||||
| Identifikationsnummer |
| ||||
| Dewey-Dezimal-Klassifikation | 500 Naturwissenschaften und Mathematik > 530 Physik | ||||
| Status | Veröffentlicht | ||||
| Begutachtet | Ja, diese Version wurde begutachtet | ||||
| An der Universität Regensburg entstanden | Zum Teil | ||||
| URN der UB Regensburg | urn:nbn:de:bvb:355-epub-781332 | ||||
| Dokumenten-ID | 78133 |
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