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Improving the Energy Resolution of the Reactor Antineutrino Energy Reconstruction with Positron Direction

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arxiv 2005.05034 v1 pith:5EOKK4HP submitted 2020-05-11 physics.ins-det hep-ex

classification physics.ins-dethep-ex
keywords energyantineutrinoresolutionpositronreactordirectionantineutrinoskinetic
verification ladder T0 review T1 audit T2 compute T3 formal
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The energy resolution is crucial for the reactor neutrino experiments which aims to determine neutrino mass ordering by precise measurement of the reactor antineutrino energy spectrum. A non-negligible effect in the antineutrino energy resolution is the spread of the kinetic energy of the recoiled neutron and the corresponding positron when detecting the antineutrinos via Inverse Beta-Decay (IBD) reaction. The emission direction of the produced positron in IBD reaction can be used to estimate the kinetic energy of neutron and thus the reconstructed antineutrino energy resolution can be improved. To demonstrate the feasibility, a simple positron direction reconstruction method is implemented in a toy liquid scintillator detector like the Taishan Antineutrino Observatory (TAO) with 4500 photoelectron yield per MeV. A 4% to 26% improvement of energy resolution can be achieved for 5 MeV reactor antineutrinos at TAO.

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  1. Testing the RG Running of the Leptonic Dirac CP Phase with Reactor Neutrinos

    hep-ph 2024-11 conditional novelty 5.0 of 10

    The JUNO-TAO reactor experiment could constrain the renormalization-group running beta function of the Dirac CP phase to about βδ ≈ 0.1, if spectrum-shape systematics are controlled.

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