5,230 research outputs found

    Recent status of the understanding of neutrino-nucleus cross section

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    In this work we have presented current understanding of neutrino-nucleon/nucleus cross sections in the few GeV energy region relevant for a precise determination of neutrino oscillation parameters and CP violation in the leptonic sector. In this energy region various processes like quasielastic and inelastic production of single and multipion production, coherent pion production, kaon, eta, hyperon production, associated particle production as well as deep inelastic scattering processes contribute to the neutrino event rates.Comment: 9-Pages, 4-figures, Talk given at DAE-HEP Symposium held at Delhi University, 12-16 December, 201

    Nucleon and nuclear structure functions with non-perturbative and higher order perturbative QCD effects

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    We have studied the nucleon structure functions FiNEM(x,Q2); i=1,2F_{iN}^{EM} (x,Q^2);~i=1,2, by including contributions due to the higher order perturbative QCD effect up to NNLO and the non-perturbative effects due to the kinematical and dynamical higher twist (HT) effects. The numerical results for FiNEM(x,Q2)F_{iN}^{EM}(x,Q^2) are obtained using Martin, Motylinski, Harland-Lang, Thorne (MMHT) 2014 NLO and NNLO nucleon parton distribution functions (PDFs). The dynamical HT correction has been included following the renormalon approach as well as the phenomenological approach and the kinematical HT effect is incorporated using the works of Schienbein et al. These nucleon structure functions have been used as an input to calculate the nuclear structure functions FiAEM(x,Q2)F_{iA}^{EM} (x,Q^2). In a nucleus, the nuclear corrections arise because of the Fermi motion, binding energy, nucleon correlations, mesonic contribution, shadowing and antishadowing effects. These nuclear corrections are taken into account in the numerical calculations to obtain the nuclear structure functions FiAEM(x,Q2)F_{iA}^{EM} (x,Q^2), for the various nuclear targets like 12C^{12}C, 27Al^{27}Al, 56Fe^{56}Fe, 64Cu^{64}Cu, 118Sn^{118}Sn, 197Au^{197}Au and 208Pb^{208}Pb which are of experimental interest. The effect of isoscalarity correction for nonisoscalar nuclear targets has also been studied. The results for the FiAEM(x,Q2)F_{iA}^{EM} (x,Q^2) are compared with nCTEQ nuclear PDFs parameterization as well as with the experimental results from JLab, SLAC and NMC in the kinematic region of 0.1≤x≤0.80.1 \le x \le 0.8 for several nuclei.Comment: arXiv admin note: text overlap with arXiv:1705.0990

    Electromagnetic and Weak Nuclear Structure Functions F1,2(x,Q2)F_{1,2}(x,Q^2) in the Intermediate Region of Q2Q^2

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    We have studied nuclear structure functions F1A(x,Q2)F_{1A}(x,Q^2) and F2A(x,Q2)F_{2A}(x,Q^2) for electromagnetic and weak processes in the region of 1GeV2<Q2<8GeV21 GeV^2 < Q^2 <8 GeV^2. The nuclear medium effects arising due to Fermi motion, binding energy, nucleon correlations, mesonic contributions and shadowing effects are taken into account using a many body field theoretical approach. The calculations are performed in a local density approximation using a relativistic nucleon spectral function. The results are compared with the available experimental data. Implications of nuclear medium effects on the validity of Callan-Gross relation are also discussed.Comment: Published in Journal of the Physical Society of Japan (NuInt-2015
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