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Spin-dependent vibronic response of a carbon radical ion in two-dimensional WS2
Cochrane, Katherine A., Lee, Jun-Ho
, Kastl, Christoph
, Haber, Jonah B., Zhang, Tianyi, Kozhakhmetov, Azimkhan, Robinson, Joshua A., Terrones, Mauricio, Repp, Jascha
, Neaton, Jeffrey B., Weber-Bargioni, Alexander und Schuler, Bruno
(2021)
Spin-dependent vibronic response of a carbon radical ion in two-dimensional WS2.
Nature Communications 12 (1), S. 7287.
Veröffentlichungsdatum dieses Volltextes: 17 Dez 2021 11:48
Artikel
DOI zum Zitieren dieses Dokuments: 10.5283/epub.51241
Zusammenfassung
Spin-polarized defects in 2D materials are attracting attention for future quantum technology applications, but their controlled fabrication is still challenging. Here, the authors report the creation and characterization of effective spin 1/2 defects via the atomically-precise generation of magnetic carbon radical ions in 2D WS2. Atomic spin centers in 2D materials are a highly anticipated ...
Spin-polarized defects in 2D materials are attracting attention for future quantum technology applications, but their controlled fabrication is still challenging. Here, the authors report the creation and characterization of effective spin 1/2 defects via the atomically-precise generation of magnetic carbon radical ions in 2D WS2. Atomic spin centers in 2D materials are a highly anticipated building block for quantum technologies. Here, we demonstrate the creation of an effective spin-1/2 system via the atomically controlled generation of magnetic carbon radical ions (CRIs) in synthetic two-dimensional transition metal dichalcogenides. Hydrogenated carbon impurities located at chalcogen sites introduced by chemical doping are activated with atomic precision by hydrogen depassivation using a scanning probe tip. In its anionic state, the carbon impurity is computed to have a magnetic moment of 1 mu(B) resulting from an unpaired electron populating a spin-polarized in-gap orbital. We show that the CRI defect states couple to a small number of local vibrational modes. The vibronic coupling strength critically depends on the spin state and differs for monolayer and bilayer WS2. The carbon radical ion is a surface-bound atomic defect that can be selectively introduced, features a well-understood vibronic spectrum, and is charge state controlled.
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| Dokumentenart | Artikel | ||||
| Titel eines Journals oder einer Zeitschrift | Nature Communications | ||||
| Verlag: | Nature | ||||
|---|---|---|---|---|---|
| Ort der Veröffentlichung: | BERLIN | ||||
| Band: | 12 | ||||
| Nummer des Zeitschriftenheftes oder des Kapitels: | 1 | ||||
| Seitenbereich: | S. 7287 | ||||
| Datum | 15 Dezember 2021 | ||||
| Institutionen | Physik > Institut für Experimentelle und Angewandte Physik > Arbeitsgruppe Jascha Repp | ||||
| Identifikationsnummer |
| ||||
| Stichwörter / Keywords | QUANTUM; RESONANCE; | ||||
| Dewey-Dezimal-Klassifikation | 500 Naturwissenschaften und Mathematik > 530 Physik 500 Naturwissenschaften und Mathematik > 540 Chemie | ||||
| Status | Veröffentlicht | ||||
| Begutachtet | Ja, diese Version wurde begutachtet | ||||
| An der Universität Regensburg entstanden | Nein | ||||
| URN der UB Regensburg | urn:nbn:de:bvb:355-epub-512412 | ||||
| Dokumenten-ID | 51241 |
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