Dipole energy dissipation and nuclear spin diffusion in mixed-state superconducting vanadium

Azriel Z. Genack
Phys. Rev. B 13, 68 – Published 1 January 1976
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Abstract

The decay of nuclear spin-spin energy has been studied in the mixed state of vanadium and anomalously rapid relaxation rates are found as compared to the rates for spin-lattice relaxation of Zeeman energy. The experiment was performed by adiabatically demagnetizing the spins in the rotating frame at a field larger than Hc2 and then cycling the field to bring the sample into the mixed state for a variable time. The residual dipolar energy is detected, once the field is raised, by adiabatically remagnetizing the sample on resonance. I show that the relaxation observed, after the vortices are pinned, is due to a cross relaxation of a spin energy associated with the magnetic field gradients in the mixed state and the dipolar energy which is in semiequilibrium with the quadrupole energy. This process is mediated by a current of magnetization, proportional to the diffusion coefficient D, which is driven by the field gradients and uses dipolar energy as a heat sink. Using a field distribution in the mixed state calculated by Marcus, I find D=2.8±0.9×1012 cm2 sec1 from the measurements of the relaxation rate of dipolar energy and of the quadrupole system heat capacity. This measurement of D is the first for a metal or for nuclei with I>12 and is twice the value predicted by the moment-moment calculation of Redfield and Yu. In the presence of large field gradients, dynamic quenching of the diffusion coefficient is observed.

  • Received 19 August 1975

DOI:https://doi.org/10.1103/PhysRevB.13.68

©1976 American Physical Society

Authors & Affiliations

Azriel Z. Genack*

  • IBM Thomas J. Watson Research Center, Yorktown Heights, New York 10598
  • Columbia University, New York, New York 10027

  • *Present address: IBM Research Laboratory, San Jose, Calif. 95193.

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Vol. 13, Iss. 1 — 1 January 1976

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