Exciton binding energy and nonhydrogenic Rydberg series in monolayer WS(2).
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Summary
Strong but unconventional electron-hole interactions are expected to be ubiquitous in atomically thin materials using a microscopic theory in which the nonlocal nature of the effective dielectric screening modifies the functional form of the Coulomb interaction.
- Type
- article
- Published
- 2014-03-17
- Cited by
- 1,821
- References
- 8
- Access
- Open access
- OpenAlex
- https://openalex.org/W2013144732
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:23157872
Keywords
Rydberg formula, Exciton, Excited state, Binding energy, Physics
References
Cited by
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- Two-dimensional exciton-polariton - light guiding by transition metal dichalcogenide monolayers
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- Visualizing nanoscale excitonic relaxation properties of disordered edges and grain boundaries in monolayer molybdenum disulfide
- Optically bright p-excitons indicating strong Coulomb coupling in transition-metal dichalcogenides
- Ultrafast mid-infrared intraexcitonic spectroscopy of monolayer MoS2
- Electrical valley excitation by spin injection in monolayer TMDC
- Dielectric Genome of van der Waals Heterostructures.
- Intrinsic homogeneous linewidth and broadening mechanisms of excitons in monolayer transition metal dichalcogenides
- Population inversion and giant bandgap renormalization in atomically thin WS2 layers
- An ultrafast terahertz probe of the transient evolution of the charged and neutral phase of photo-excited electron-hole gas in a monolayer semiconductor
- Optical control of charged exciton states in tungsten disulfide
- Observation of biexcitons in monolayer WSe2
- Helicity-resolved Raman scattering of MoS₂, MoSe₂, WS₂, and WSe₂ atomic layers.
- Photoluminescence enhancement in few-layer WS2 films via Au nanoparticles
- Identification of excitons, trions and biexcitons in single‐layer WS2
- Optical Investigation of Monolayer and Bulk Tungsten Diselenide (WSe₂) in High Magnetic Fields.
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