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Distinctive Signatures of the Spin- and Momentum-Forbidden Dark Exciton States in the Photoluminescence of Strained WSe2 Monolayers under Thermalization.
Peng, Guan-Hao; Lo, Ping-Yuan; Li, Wei-Hua; Huang, Yan-Chen; Chen, Yan-Hong; Lee, Chi-Hsuan; Yang, Chih-Kai; Cheng, Shun-Jen.
Afiliação
  • Peng GH; Department of Electrophysics , National Chiao Tung University , Hsinchu 300 , Taiwan, Republic of China.
  • Lo PY; Department of Electrophysics , National Chiao Tung University , Hsinchu 300 , Taiwan, Republic of China.
  • Li WH; Department of Electrophysics , National Chiao Tung University , Hsinchu 300 , Taiwan, Republic of China.
  • Huang YC; Department of Electrophysics , National Chiao Tung University , Hsinchu 300 , Taiwan, Republic of China.
  • Chen YH; Department of Electrophysics , National Chiao Tung University , Hsinchu 300 , Taiwan, Republic of China.
  • Lee CH; Graduate Institute of Applied Physics , National Chengchi University , Taipei 11605 , Taiwan, Republic of China.
  • Yang CK; Graduate Institute of Applied Physics , National Chengchi University , Taipei 11605 , Taiwan, Republic of China.
  • Cheng SJ; Department of Electrophysics , National Chiao Tung University , Hsinchu 300 , Taiwan, Republic of China.
Nano Lett ; 19(4): 2299-2312, 2019 04 10.
Article em En | MEDLINE | ID: mdl-30860847
ABSTRACT
With both spin and valley degrees of freedom, the low-lying excitonic spectra of photoexcited transition-metal dichalcogenide monolayers (TMDC-MLs) are featured by rich fine structures, comprising the intravalley bright exciton states as well as various intra- and intervalley dark ones. The latter states can be classified as those of the spin- and momentum-forbidden dark excitons according to the violated optical selection rules. Because of their optical invisibility, these two types of the dark states are in principle hardly observed and even distinguished in conventional spectroscopies although their impacts on the optical and dynamical properties of TMDC-MLs have been well noticed. In this Letter, we present a theoretical and computational investigation of the exciton fine structures and the temperature-dependent photoluminescence spectra of strained tungsten diselenide monolayers (WSe2-MLs) where the intravalley spin-forbidden dark exciton lies in the lowest exciton states and other momentum-forbidden states are in the higher energies that are tunable by external stress. The numerical computations are carried out by solving the Bethe-Salpeter equation for an exciton in a WSe2-ML under the stress-control in the tight-binding scheme established from the first principle computation in the density functional theory. According to the numerical computation and supportive model analysis, we reveal the distinctive signatures of the spin- and momentum-forbidden exciton states of strained WSe2-MLs in the temperature-dependent photoluminescences and present the guiding principle to infer the relative energetic locations of the two types of dark excitons.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article