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A. M. Awobode

Publications and source records attributed to A. M. Awobode.

3 recordsLinked to original sources

Highly Accurate Measurement of the Electron Orbital Magnetic Moment

We propose to accurately determine the orbital magnetic moment of the electron by measuring, in a Magneto-Optical or Ion trap, the ratio of the Lande g-factors in two atomic states. From the measurement of (gJ1/gJ2), the quantity A, which depends on the corrections to the electron g-factors can be extracted, if the states are LS coupled. Given that highly accurate values of the correction to the spin g-factor are currently available, accurate values of the correction to the orbital g-factor may also be determined. At present, (-1.8 +/- 0.4) x 10-4 has been determined as a correction to the electron orbital g-factor, by using earlier measurements of the ratio gJ1/gJ2, made on the Indium 2P1/2 and 2P3/2 states.

physics.atom-ph

Intrinsic Perturbation of the Landau Levels in Metals and Semiconductors at Low Temperatures

It is shown that the frequency of the de Haas van Alphen effect in nonsuperconducting metals at very low temperatures is significantly corrected by a perturbative term which appears in the Landau equation sequel to an extension of the Pauli equation. The correction to the frequency of the de Haas van Alphen oscillations is found to depend on the Fermi energy and the measurable anomalous part of the electron gyro-magnetic factor. Furthermore, it is shown that as a consequence of the perturbing term the electronic specific heat Cv of a dilute, degenerate Fermi gas, under high magnetic field induction greater that 25 Tesla and at ultra-low temperatures of the order of one milli Kelvin shows an anomalous behavior, and at a finite temperature becomes vanishingly small, i.e Cv is approximately zero, as the temperature approaches absolute zero. Precision measurement at low temperatures and high magnetic fields of the magneto optical absorption in simple band semiconductors is suggested as an immediate way of detecting the modification of the Landau levels due to the weak perturbation term which corrects in a magnetic field, the kinetic energy of the electrons.

cond-mat.mes-hall

Precision Measurement of the Electron/Muon Gyromagnetic Factors

Clear, persuasive arguments are brought forward to motivate the need for highly precise measurements of the electron/muon orbital g, i.e. gL. First, we briefly review results obtained using an extended Dirac equation, which conclusively showed that, as a consequence of quantum relativistic corrections arising from the time-dependence of the rest-energy, the electron gyromagnetic factors are corrected. It is next demonstrated, using the data of Kusch & Foley on the measurement of deltaS minus 2 deltaL together with the modern precise measurements of the electron deltaS where deltaS identically equal to gS minus 2, that deltaL may be a small, non-zero quantity, where we have assumed Russel-Saunders LS coupling and proposed, along with Kusch and Foley, that gS = 2 plus deltaS and gS = 1 plus deltaL. Therefore, there is probable evidence from experimental data that gS is not exactly equal to 1; the expectation that quantum effects will significantly modify the classical value of the orbital g is therefore reasonable. Finally, we show that if, as suggested by the results obtained from the modified Dirac theory, deltaS and deltaL depend linearly on a dimensionless parameter DELTA such that the gyromagnetic factors are considered corrected as follows; gS = 2 plus 2 DELTA and gL = 1 minus DELTA, then the Kusch-Foley data implies that the correction DELTA approximately equals 1.0 times 10-3 . Modern, high precision measurements of the electron and muon orbital gL are therefore required, in order to properly determine by experiments the true value of gL minus 1, perhaps to about one part in a trillion as was recently done for gS minus 2.

nucl-th