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  • Access by Xinjiang University

Exchange and Quadrupole Broadening of Nuclear Acoustic Resonance Line Shapes in the III-V Semiconductors

R. K. Sundfors

  • Arthur Holly Compton Laboratory of Physics, Washington University, Saint Louis, Missouri 63130

Phys. Rev. 185, 458 – Published 10 September, 1969

DOI: https://doi.org/10.1103/PhysRev.185.458

Abstract

Nuclear acoustic resonance (NAR) and nuclear magnetic resonance (NMR) are used to study the line-widths, second moments, and line shapes of nuclear-spin systems of InAs, InSb, GaAs, GaSb, and AlSb. These cw measurements are made at frequencies of 8-10 MHz and at 300°K in single crystals with intrinsic or near intrinsic concentrations of impurities. Different NAR and NMR linewidths for the same nuclear-spin system are explained by the different interaction Hamiltonians for spin-phonon and spin-photon couplings to the nuclear-spin system. When the magnetic field is along 001 directions, the resonance line shapes are broadened by dipole-dipole and isotropic nuclear-exchange interactions. When the magnetic field is rotated from 001 directions, increased broadening of the resonance line shapes is explained by small anisotropic dipole-dipole and much larger anisotropic quadrupole interactions. The measured like-spin and unlike-spin exchange constants agree with an exchange-constant dependence on the inverse fourth power of the internuclear distance. Like-spin and unlike-spin exchange constants are determined at the nuclear positions in each compound and used with a theory for indirect nuclear-spin exchange to predict the s-character electronic wave-function density. The strongly anisotropic quadrupole broadening is explained by electric field gradients produced by the electric fields associated with ionized substitutional impurities. From the measured field gradients, antishielding constants at the In, Sb, Ga, and As nuclear positions are determined relative to each other.

References (28)

  1. R. G. Shulman, J. M. Mays, and D. W. McCall, Phys. Rev. 100, 692 (1955)
  2. R. G. Shulman, B. J. Wyluda, and H. R. Hrostowski, Phys. Rev. 109, 808 (1958)
  3. M. A. Ruderman and C. Kittel, Phys. Rev. 96, 99 (1954)
  4. N. Bloembergen and T. J. Rowland, Phys. Rev. 97, 1679 (1955)
  5. P. W. Anderson, Phys. Rev. 99, 623 (1955)
  6. E. H. Rhoderick, Phil. Mag. 3, 545 (1958)
  7. E. H. Rhoderick, J. Phys. Chem. Solids 8, 498 (1958)
  8. D. J. Oliver, J. Phys. Chem. Solids 11, 257 (1959)
  9. R. M. Sternheimer, Phys. Rev. 146, 140 (1966)
  10. R. Loudon, Phys. Rev. 119, 919 (1960)
  11. N. G. Koloskova and U. Kh. Kopvillem, Zh. Eksperim i. Teor. Fiz. 38, 1351 (1960) [English transl.: Soviet Phys.—JETP 11, 973 (1960)]
  12. N. G. Koloskova and U. Kh. Kopvillem, Fiz. Tverd. Tela. 4, 697 (1962) [English transl.: Soviet Phys.—Solid State 4, 508 (1963)]
  13. R. Kubo and K. Tomita, J. Phys. Soc. Japan 9, 888 (1954)
  14. J. H. Van Vleck, Phys. Rev. 74, 1168 (1948)
  15. R. Bersohn, J. Chem. Phys. 20, 1505 (1952)
  16. R. K. Sundfors, Phys. Rev. 177, 1221 (1969)
  17. D. I. Bolef, Physical Acoustics (Academic Press Inc., New York, 1966), Vol. 4A, Chap. 3
  18. M. H. Cohen and F. Reif, Solid State Physics (Academic Press Inc., New York, 1957), Vol. 5, p. 322
  19. E. Andrew, K. Swanson, and B. Williams, Proc. Phys. Soc. (London) 77, 36 (1961)
  20. K. Kambe and J. K. Ollom, J. Phys. Soc. Japan 11, 50 (1956)
  21. G. E. Pake and E. M. Purcell, Phys. Rev. 74, 1184 (1948)
  22. A. C. Chapman, P. Rhodes, and E. F. Seymour, Proc. Phys. Soc. (London) 370, 345 (1957)
  23. O. Madelung, Physics of III-V Compounds (John Wiley & Son, Inc., New York, 1964)
  24. M. Gueron, Phys. Rev. 135, A200 (1964)
  25. E. Femi and E. Segré, Z. Physik 82, 729 (1933)
  26. D. Gill and N. Bloembergen, Phys. Rev. 129, 2398 (1963)
  27. E. Brun, R. J. Mahler, H. Mahon, and W. L. Pierce, Phys. Rev. 129, 1965 (1963)
  28. H. D. Brodsky and E. Burnstein, Bull. Am. Phys. Soc. 7, 214 (1962)

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