Electroabsorption in Semiconductors: The Excitonic Absorption Edge

John D. Dow and David Redfield
Phys. Rev. B 1, 3358 – Published 15 April 1970
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Abstract

Numerical calculations of the optical-absorption coefficient for direct, excitonic transitions in a uniform applied electric field are presented. The electron-hole scattering is treated within the effective-mass approximation and leads to an absorption coefficient which differs markedly in size and shape from the Franz-Keldysh absorption spectrum. A detailed numerical study of the shape of the absorption-edge spectrum at photon energies somewhat below the zero-field absorption threshold suggests that for small field strengths the dominant asymptotic form of the absorption coefficient is exp(C0|EE0|f), where f=|e|FaR is the electric field strength in units of exciton Rydbergs per electron-exciton Bohr radius. This result contradicts the existing belief that the electron-hole interaction does not alter the asymptotic form of the Franz-Keldysh shape: exp(C0|EE0|32f). Physical arguments are presented to show why the exciton effects should be important. A discussion is presented of the interrelationships among the present treatment of electro-absorption and various one-electron, exciton, and many-body formalisms.

  • Received 26 September 1969

DOI:https://doi.org/10.1103/PhysRevB.1.3358

©1970 American Physical Society

Authors & Affiliations

John D. Dow*

  • Joseph Henry Laboratory of Physics, Princeton University, Princeton, New Jersey 08540 and RCA Laboratories, Princeton, New Jersey 08540

David Redfield

  • RCA Laboratories, Princeton, New Jersey 08540

  • *Research sponsored in part by the U. S. Air Force Office of Scientific Research under Contract No. AF49(638) 1545.

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Vol. 1, Iss. 8 — 15 April 1970

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