Can one measure the Cosmic Neutrino Background?

Author:

Faessler Amand1,Hodák Rastislav2,Kovalenko Sergey3,Šimkovic Fedor45

Affiliation:

1. Institute für Theoretische Physik der Universität Tübingen, D-72076 Tübingen, Germany

2. Institute of Experimental and Applied Physics, Czech Technical University in Prague, CZ-128 00 Prague, Czech Republic

3. Universidad Técnica Federico Santa María, Centro-Científico-Tecnológico de Valparaíso, Casilla 110-V, Valparaíso, Chile

4. JINR, 141980 Dubna, Moscow Region, Russia

5. Faculty of Mathematics, Physics and Informatics, Comenius University, SK-842 48 Bratislava, Slovakia

Abstract

The Cosmic Microwave Background (CMB) yields information about our Universe at around 380,000 years after the Big Bang (BB). Due to the weak interaction of the neutrinos with matter, the Cosmic Neutrino Background (CNB) should give information about a much earlier time of our Universe, around one second after the BB. Probably, the most promising method to “see” the CNB is the capture of the electron neutrinos from the Background by Tritium, which then decays into 3He and an electron with the energy of the the [Formula: see text]-value [Formula: see text] 18.562[Formula: see text]keV plus the electron neutrino rest mass. The “KArlsruhe TRItium Neutrino” (KATRIN) experiment, which is in preparation, seems presently the most sensitive proposed method for measuring the electron antineutrino mass. At the same time, KATRIN can also look by the reaction [Formula: see text]. The capture of the Cosmic Background Neutrinos (CNB) should show in the electron spectrum as a peak by the electron neutrino rest mass above [Formula: see text]. Here, the possibility to see the CNB with KATRIN is studied. A detection of the CNB by KATRIN seems not to be possible at the moment. But KATRIN should be able to determine an upper limit for the local electron neutrino density of the CNB.

Publisher

World Scientific Pub Co Pte Lt

Subject

General Physics and Astronomy,Nuclear and High Energy Physics

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