Deciphering the Intense Postgap Absorptions of Monolayer Transition Metal Dichalcogenides

Rich valleytronics and diverse defect-induced or interlayer pre-bandgap excitonics have been extensively studied in transition metal dichalcogenides (TMDCs), a system with fascinating optical physics. However, more intense high-energy absorption peaks (∼3 eV) above the bandgaps used to be long ignor...

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Veröffentlicht in:ACS nano 2021-04, Vol.15 (4), p.7783-7789
Hauptverfasser: Hong, Jinhua, Koshino, Masanori, Senga, Ryosuke, Pichler, Thomas, Xu, Hua, Suenaga, Kazu
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container_issue 4
container_start_page 7783
container_title ACS nano
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creator Hong, Jinhua
Koshino, Masanori
Senga, Ryosuke
Pichler, Thomas
Xu, Hua
Suenaga, Kazu
description Rich valleytronics and diverse defect-induced or interlayer pre-bandgap excitonics have been extensively studied in transition metal dichalcogenides (TMDCs), a system with fascinating optical physics. However, more intense high-energy absorption peaks (∼3 eV) above the bandgaps used to be long ignored and their underlying physical origin remains to be unveiled. Here, we employ momentum resolved electron energy loss spectroscopy to measure the dispersive behaviors of the valley excitons and intense higher-energy peaks at finite momenta. Combined with accurate Bethe–Salpeter equation calculations, non-band-nesting transitions at the Q valley and at the midpoint of KM are found to be responsible for the high-energy broad absorption peaks in tungsten dichalcogenides and present spin polarizations similar to A excitons, in contrast with the band-nesting mechanism in molybdenum dichalcogenides. Our experiment–theory joint research will offer insights into the physical origins and manipulation of the intense high-energy excitons in TMDC-based optoelectronic devices.
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title Deciphering the Intense Postgap Absorptions of Monolayer Transition Metal Dichalcogenides
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