Nuclear Spin Relaxation in Molybdenum Metal
- 4 March 1966
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 143 (1) , 328-334
- https://doi.org/10.1103/physrev.143.328
Abstract
The and nuclear spin-spin and spin-lattice relaxation rates in molybdenum metal have been studied in the temperature range °K. The transverse relaxation process is found to have an exponential time dependence (corresponding to a Lorentzian line shape) with characteristic times msec and msec which are independent of temperature. At 4.0°K the longitudinal relaxation times are sec and sec. The ratio is larger than the square of the nuclear moment ratio, . This anomaly is attributed to an electric quadrupole process due to -band conduction electrons. This process contributes significantly to the relaxation rate of but not to that of because of the large difference in nuclear quadrupole moments (). The known moment ratios are used to partition the observed rates into nuclear magnetic dipole () and nuclear electric quadrupole () contributions. The resulting values of yield quadrupole moment estimates and . An approximate separation of into contact, core-polarization, and orbital rates has been achieved. The principal contribution to the Knight shift and to the conduction-electron susceptibility is shown to arise from the orbital magnetization of the band. The results of this study provide an upper-limit estimate of about 3 for the electron-phonon enhancement of the -electron specific heat.
Keywords
This publication has 23 references indexed in Scilit:
- Nuclear magnetic relaxation and resonnance line shift in metalsPublished by Elsevier ,2004
- Fermi Surfaces of Cr, Mo, and W by the Augmented-Plane-Wave MethodPhysical Review B, 1965
- Nuclear Spin-Lattice Relaxation and Knight Shift in Tungsten MetalPhysical Review B, 1965
- Knight Shift Studies of Transition Metals: Rhodium and Rhodium Intermetallic CompoundsPhysical Review B, 1965
- Knight Shifts and Susceptibilities of Transition Metals: PalladiumPhysical Review B, 1964
- Interpretation of Knight Shifts and Susceptibilities of Transition Metals: PlatinumPhysical Review B, 1964
- Nuclear Spin Relaxation in Transition Metals; Core PolarizationPhysical Review B, 1964
- Nuclear Magnetic Relaxation in Transition MetalsJournal of the Physics Society Japan, 1963
- Nuclear Spin-Lattice Relaxation in Dilute Paramagnetic SapphirePhysical Review B, 1962
- Spin EchoesPhysical Review B, 1950