3,242 research outputs found

    Precise measurements of electron and hole g-factors of single quantum dots by using nuclear field

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    We demonstrated the cancellation of the external magnetic field by the nuclear field at one edge of the nuclear polarization bistability in single InAlAs quantum dots. The cancellation for the electron Zeeman splitting gives the precise value of the hole g-factor. By combining with the exciton g-factor that is obtained from the Zeeman splitting for linearly polarized excitation, the magnitude and sign of the electron and hole g-factors in the growth direction are evaluated.Comment: 3 pages, 2 figure

    A deformed QRPA formalism for single and two-neutrino double beta decay

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    We use a deformed QRPA formalism to describe simultaneously the energy distributions of the single beta Gamow-Teller strength and the two-neutrino double beta decay matrix elements. Calculations are performed in a series of double beta decay partners with A = 48, 76, 82, 96, 100, 116, 128, 130, 136 and 150, using deformed Woods-Saxon potentials and deformed Skyrme Hartree-Fock mean fields. The formalism includes a quasiparticle deformed basis and residual spin-isospin forces in the particle-hole and particle-particle channels. We discuss the sensitivity of the parent and daughter Gamow-Teller strength distributions in single beta decay, as well as the sensitivity of the double beta decay matrix elements to the deformed mean field and to the residual interactions. Nuclear deformation is found to be a mechanism of suppression of the two-neutrino double beta decay. The double beta decay matrix elements are found to have maximum values for about equal deformations of parent and daughter nuclei. They decrease rapidly when differences in deformations increase. We remark the importance of a proper simultaneous description of both double beta decay and single Gamow-Teller strength distributions. Finally, we conclude that for further progress in the field it would be useful to improve and complete the experimental information on the studied Gamow-Teller strengths and nuclear deformations.Comment: 33 pages, 19 figures. To be published in Phys. Rev.

    Confronting Dilaton-exchange gravity with experiments

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    We study the experimental constraints on theories, where the equivalence principle is violated by dilaton-exchange contributions to the usual graviton-exchange gravity. We point out that in this case it is not possible to have any CPT violation and hence there is no constraint from the CPT violating measurements in the K−K-system. The most stringent bound is obtained from the KL−KSK_L - K_S mass difference. In contrast, neither neutrino oscillation experiments nor neutrinoless double beta decay imply significant constraints.Comment: 7 page

    Spin-filter tunnel junction with matched Fermi surfaces

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    Efficient injection of spin-polarized current into a semiconductor is a basic prerequisite for building semiconductor-based spintronic devices. Here, we use inelastic electron tunneling spectroscopy to show that the efficiency of spin-filter-type spin injectors is limited by spin scattering of the tunneling electrons. By matching the Fermi-surface shapes of the current injection source and target electrode material, spin injection efficiency can be significantly increased in epitaxial ferromagnetic insulator tunnel junctions. Our results demonstrate that not only structural but also Fermi-surface matching is important to suppress scattering processes in spintronic devices.Comment: 5 pages, 4 figure

    Nuclear deformation and neutrinoless double-β\beta decay of 94,96^{94,96}Zr, 98,100^{98,100}Mo, 104^{104}Ru, 110^{110}Pd, 128,130^{128,130}Te and 150^{150}Nd nuclei in mass mechanism

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    The (β−β−)0ν(\beta ^{-}\beta ^{-})_{0\nu} decay of 94,96^{94,96}Zr, 98,100^{98,100}Mo, 104^{104}Ru, 110^{110}Pd, 128,130^{128,130}Te and 150^{150}Nd isotopes for the 0+→0+0^{+}\to 0^{+} transition is studied in the Projected Hartree-Fock-Bogoliubov framework. In our earlier work, the reliability of HFB intrinsic wave functions participating in the β−β−\beta ^{-}\beta ^{-} decay of the above mentioned nuclei has been established by obtaining an overall agreement between the theoretically calculated spectroscopic properties, namely yrast spectra, reduced B(E2B(E2:0+→2+)0^{+}\to 2^{+}) transition probabilities, quadrupole moments Q(2+)Q(2^{+}), gyromagnetic factors g(2+)g(2^{+}) as well as half-lives T1/22νT_{1/2}^{2\nu} for the 0+→0+0^{+}\to 0^{+} transition and the available experimental data. In the present work, we study the (β−β−)0ν(\beta ^{-}\beta ^{-})_{0\nu} decay for the 0+→0+0^{+}\to 0^{+} transition in the mass mechanism and extract limits on effective mass of light as well as heavy neutrinos from the observed half-lives T1/20ν(0+→0+)T_{1/2}^{0\nu}(0^{+}\to 0^{+}) using nuclear transition matrix elements calculated with the same set of wave functions. Further, the effect of deformation on the nuclear transition matrix elements required to study the (β−β−)0ν(\beta ^{-}\beta ^{-})_{0\nu} decay in the mass mechanism is investigated. It is noticed that the deformation effect on nuclear transition matrix elements is of approximately same magnitude in (β−β−)2ν(\beta ^{-}\beta ^{-})_{2\nu} and (β−β−)0ν(\beta ^{-}\beta ^{-})_{0\nu} decay.Comment: 15 pages, 1 figur
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