Tytuł pozycji:
Discrete symmetries tested at 10$^{−4}$ precision using linear polarization of photons from positronium annihilations
- Tytuł:
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Discrete symmetries tested at 10$^{−4}$ precision using linear polarization of photons from positronium annihilations
- Autorzy:
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Czerwiński, Eryk
Dulski, Kamil
Kapłon, Łukasz
Gorgol, Marek
Korcyl, Grzegorz
Das, Manish
Shopa, Roman Y.
Wiślicki, Wojciech
Stępień, Ewa
Chug, Neha
Gajos, Aleksander
Shivani, Shivani
Jasińska, Bożena
Moskal, Paweł
Curceanu, Catalina
Kacprzak, Krzysztof
Tayefi Ardebili, Faranak
Coussat, Aurélien
Bass, Steven D.
Krzemień, Wojciech
Skurzok, Magdalena
Tanty, Pooja
Silarski, Michał
Eliyan, Kavya Valsan
Kozik, Tomasz
Beyene, Ermias Yitayew
Hiesmayr, Beatrix C.
Raczyński, Lech
Kumar, Deepak
Klimaszewski, Konrad
Dadgar, Meysam
Perez del Rio, Elena
Niedźwiecki, Szymon
Parzych, Szymon
Konieczka, Paweł
Moyo, Simbarashe
Tayefi Ardebili, Keyvan
Sharma, Sushil
Kaplanoglu, Muhammed
Raj, Juhi
Mryka, Wiktor
- Data publikacji:
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2024
- Język:
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angielski
- Prawa:
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Udzielam licencji. Uznanie autorstwa 4.0 Międzynarodowa
http://creativecommons.org/licenses/by/4.0/legalcode.pl
- Dostawca treści:
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Repozytorium Uniwersytetu Jagiellońskiego
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Discrete symmetries play an important role in particle physics with violation of CP connected to the matter-antimatter imbalance in the Universe. We report the most precise test of P, T and CP invariance in decays of ortho-positronium, performed with methodology involving polarization of photons from these decays. Positronium, the simplest bound state of an electron and positron, is of recent interest with discrepancies reported between measured hyperfine energy structure and theory at the level of 10−4 signaling a need for better understanding of the positronium system at this level. We test discrete symmetries using photon polarizations determined via Compton scattering in the dedicated J-PET tomograph on an event-by-event basis and without the need to control the spin of the positronium with an external magnetic field, in contrast to previous experiments. Our result is consistent with QED expectations at the level of 0.0007 and one standard deviation.