Optical Investigation of Monolayer and Bulk Tungsten Diselenide (WSe2) in High Magnetic Fields
Închide
Conţinutul numărului revistei
Articolul precedent
Articolul urmator
191 0
SM ISO690:2012
MITIOGLU, Anatolie, PŁOCHOCKA, Paulina, GRANADOS DEL AGUILA, Andres, CHRISTIANEN, Peter C.M., DELIGEORGIS, George, ANGHEL, Sergiu, KULYUK, Leonid, MAUDE, Duncan Kennedy. Optical Investigation of Monolayer and Bulk Tungsten Diselenide (WSe2) in High Magnetic Fields. In: Nano letters, 2015, vol. 15, pp. 4387-4392. ISSN 1530-6984. DOI: https://doi.org/10.1021/acs.nanolett.5b00626
EXPORT metadate:
Google Scholar
Crossref
CERIF

DataCite
Dublin Core
Nano letters
Volumul 15 / 2015 / ISSN 1530-6984 /ISSNe 1530-6992

Optical Investigation of Monolayer and Bulk Tungsten Diselenide (WSe2) in High Magnetic Fields

DOI:https://doi.org/10.1021/acs.nanolett.5b00626

Pag. 4387-4392

Mitioglu Anatolie12, Płochocka Paulina1, Granados del Aguila Andres3, Christianen Peter C.M.3, Deligeorgis George4, Anghel Sergiu2, Kulyuk Leonid2, Maude Duncan Kennedy1
 
1 Laboratoire National des Champs Magnétiques Intenses, Toulouse,
2 Institute of Applied Physics, Academy of Sciences of Moldova,
3 Institute for Molecules and Materials, Radboud University of Nijmegen,
4 Microelectronics Research Group, FORTH-IESL, Heraklion, Crete
 
 
Disponibil în IBN: 5 iunie 2023


Rezumat

Optical spectroscopy in high magnetic fields B ≤ 65 T is used to reveal the very different nature of carriers in monolayer and bulk transition metal dichalcogenides. In monolayer WSe2, the exciton emission shifts linearly with the magnetic field and exhibits a splitting that originates from the magnetic field induced valley splitting. The monolayer data can be described using a single particle picture with a Dirac-like Hamiltonian for massive Dirac Fermions, with an additional term to phenomenologically include the valley splitting. In contrast, in bulk WSe2 where the inversion symmetry is restored, transmission measurements show a distinctly excitonic behavior with absorption to the 1s and 2s states. Magnetic field induces a spin splitting together with a small diamagnetic shift and cyclotron like behavior at high fields, which is best described within the hydrogen model. 

Cuvinte-cheie
bulk, Fermi velocity, massive Dirac Fermions, Monolayer, transition metal dichalcogenides, valley splitting, WSe2