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      Self-consistent computation of electronic and optical properties of a single exciton in a spherical quantum dot via matrix diagonalization method

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      Author(s)
      Sahin, M.
      Nizamoglu, S.
      Kavruk, A. E.
      Demir, Hilmi Volkan
      Date
      2009-08-21
      Source Title
      Journal of Applied Physics
      Print ISSN
      0021-8979
      Publisher
      American Institute of Physics
      Volume
      106
      Issue
      4
      Pages
      043704-1 - 043704-5
      Language
      English
      Type
      Article
      Item Usage Stats
      214
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      319
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      Abstract
      In this study, we develop and demonstrate an efficient self-consistent calculation schema that computes the electronic structure and optical properties of a single exciton in a spherical quantum dot (QD) with an interacting pair of electron and hole wave functions. To observe modifications on bands, wave functions, and energies due to the attractive Coulomb potential, the full numeric matrix diagonalization technique is employed to determine sublevel energy eigenvalues and their wave functions in effective mass approximation. This treatment allows to observe that the conduction and valance band edges bend, that the electron and hole wave functions strongly localize in the QD, and that the excitonic energy level exhibits redshift. In our approach for the Coulomb term between electron and hole, the Poisson-Schrodinger equations are solved self-consistently in the Hartree approximation. Subsequently, exciton binding energies and associated optical properties are computed. The results are presented as a function of QD radii and photon energies. We conclude that all of these numerical results are in agreement with the experimental studies.
      Keywords
      Semiconductor Nanocrystals
      Interband absorption
      Magnetic-field
      Energy
      Confinement
      Transitions
      Assignment
      State
      Light
      Permalink
      http://hdl.handle.net/11693/11756
      Published Version (Please cite this version)
      http://dx.doi.org/10.1063/1.3197034
      Collections
      • Department of Electrical and Electronics Engineering 4011
      • Department of Physics 2550
      • Institute of Materials Science and Nanotechnology (UNAM) 2258
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