79 research outputs found

    Neutron interferometric measurement of the scattering length difference between the triplet and singlet states of n-3^3He

    Full text link
    We report a determination of the n-3^3He scattering length difference Δb′=b1′−b0′=\Delta b^{\prime} = b_{1}^{\prime}-b_{0}^{\prime} = (−5.411-5.411 ±\pm 0.0310.031 (statistical) ±\pm 0.0390.039 (systematic)) fm between the triplet and singlet states using a neutron interferometer. This revises our previous result Δb′=\Delta b^{\prime} = (-5.610 ±\pm 0.0270.027 (statistical) ±\pm 0.0320.032 (systematic) fm obtained using the same technique in 2008. This revision is due to a re-analysis of the 2008 experiment that includes a more robust treatment of the phase shift caused by magnetic field gradients near the 3^3He cell. Furthermore, we more than doubled our original data set from 2008 by acquiring six months of additional data in 2013. Both the new data set and a re-analysis of the older data are in good agreement. Scattering lengths of low Z isotopes are valued for use in few-body nuclear effective field theories, provide important tests of modern nuclear potential models and in the case of 3^3He aid in the interpretation of neutron scattering from quantum liquids. The difference Δb′\Delta b^{\prime} was determined by measuring the relative phase shift between two incident neutron polarizations caused by the spin-dependent interaction with a polarized 3^3He target. The target 3^3He gas was sealed inside a small, flat windowed glass cell that was placed in one beam path of the interferometer. The relaxation of 3^3He polarization was monitored continuously with neutron transmission measurements. The neutron polarization and spin flipper efficiency were determined separately using 3^3He analyzers and two different polarimetry analysis methods. A summary of the measured scattering lengths for n-3^3He with a comparison to nucleon interaction models is given

    Precision Measurement of the n-3He Incoherent Scattering Length Using Neutron Interferometry

    Full text link
    We report the first measurement of the low-energy neutron-3^3He incoherent scattering length using neutron interferometry: bi′=(−2.512±0.012statistical±0.014systematic)b_i' = (-2.512\pm 0.012{statistical}\pm0.014{systematic}) fm. This is in good agreement with a recent calculation using the AV18+3N potential. The neutron-3^3He scattering lengths are important for testing and developing nuclear potential models that include three nucleon forces, effective field theories for few-body nuclear systems, and neutron scattering measurements of quantum excitations in liquid helium. This work demonstrates the first use of a polarized nuclear target in a neutron interferometer.Comment: 4 figure

    Precision Measurement of the Radiative B\Beta Decay of the Free Neutron

    Get PDF
    The standard model predicts that, in addition to a proton, an electron, and an antineutrino, a continuous spectrum of photons is emitted in the β\beta decay of the free neutron. We report on the RDK II experiment which measured the photon spectrum using two different detector arrays. An annular array of bismuth germanium oxide scintillators detected photons from 14 to 782~keV. The spectral shape was consistent with theory, and we determined a branching ratio of 0.00335 ±\pm 0.00005 [stat] ±\pm 0.00015 [syst]. A second detector array of large area avalanche photodiodes directly detected photons from 0.4 to 14~keV. For this array, the spectral shape was consistent with theory, and the branching ratio was determined to be 0.00582 ±\pm 0.00023 [stat] ±\pm 0.00062 [syst]. We report the first precision test of the shape of the photon energy spectrum from neutron radiative decay and a substantially improved determination of the branching ratio over a broad range of photon energies

    Search for a T-odd, P-even Triple Correlation in Neutron Decay

    Get PDF
    Background: Time-reversal-invariance violation, or equivalently CP violation, may explain the observed cosmological baryon asymmetry as well as signal physics beyond the Standard Model. In the decay of polarized neutrons, the triple correlation D\cdot(p_{e}\timesp_{\nu}) is a parity-even, time-reversal- odd observable that is uniquely sensitive to the relative phase of the axial-vector amplitude with respect to the vector amplitude. The triple correlation is also sensitive to possible contributions from scalar and tensor amplitudes. Final-state effects also contribute to D at the level of 1e-5 and can be calculated with a precision of 1% or better. Purpose: We have improved the sensitivity to T-odd, P-even interactions in nuclear beta decay. Methods: We measured proton-electron coincidences from decays of longitudinally polarized neutrons with a highly symmetric detector array designed to cancel the time-reversal-even, parity-odd Standard-Model contributions to polarized neutron decay. Over 300 million proton-electron coincidence events were used to extract D and study systematic effects in a blind analysis. Results: We find D = [-0.94\pm1.89(stat)\pm0.97(sys)]e-4. Conclusions: This is the most sensitive measurement of D in nuclear beta decay. Our result can be interpreted as a measurement of the phase of the ratio of the axial-vector and vector coupling constants (CA/CV= |{\lambda}|exp(i{\phi}_AV)) with {\phi}_AV = 180.012{\deg} \pm0.028{\deg} (68% confidence level) or to constrain time-reversal violating scalar and tensor interactions that arise in certain extensions to the Standard Model such as leptoquarks. This paper presents details of the experiment, analysis, and systematic- error corrections.Comment: 21 pages, 22 figure
    • …
    corecore