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  Quantitative Long-Term Monitoring of the Circulating Gases in the KATRIN Experiment Using Raman Spectroscopy.

KATRIN collaboration (2020). Quantitative Long-Term Monitoring of the Circulating Gases in the KATRIN Experiment Using Raman Spectroscopy. Sensors, 20, 4827. doi:10.3390/s20174827.

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KATRIN collaboration1, Author
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1Max Planck Institute for Physics, Max Planck Society and Cooperation Partners, ou_2253650              

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Free keywords: KATRIN
 Abstract: The Karlsruhe Tritium Neutrino (KATRIN) experiment aims at measuring the effective electron neutrino mass with a sensitivity of 0.2 eV/c2, i.e., improving on previous measurements by an order of magnitude. Neutrino mass data taking with KATRIN commenced in early 2019, and after only a few weeks of data recording, analysis of these data showed the success of KATRIN, improving on the known neutrino mass limit by a factor of about two. This success very much could be ascribed to the fact that most of the system components met, or even surpassed, the required specifications during long-term operation. Here, we report on the performance of the laser Raman (LARA) monitoring system which provides continuous high-precision information on the gas composition injected into the experiment's windowless gaseous tritium source (WGTS), specifically on its isotopic purity of tritium - one of the key parameters required in the derivation of the electron neutrino mass. The concentrations c_x for all six hydrogen isotopologues were monitored simultaneously, with a measurement precision for individual components of the order 1e-3 or better throughout the complete KATRIN data taking campaigns to date. From these, the tritium purity, epsilon_T, is derived with precision of <1e-3 and trueness of <3e-3, being within and surpassing the actual requirements for KATRIN, respectively.

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 Dates: 2020
 Publication Status: Issued
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Title: Sensors
Source Genre: Journal
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Pages: - Volume / Issue: 20 Sequence Number: - Start / End Page: 4827 Identifier: -