Extensive Search for Axion Dark Matter over 1 GHz with CAPP’S Main Axion Experiment

Author:

Ahn Saebyeok1ORCID,Kim JinMyeong21,Ivanov Boris I.1ORCID,Kwon Ohjoon1,Byun HeeSu1,van Loo Arjan F.34ORCID,Park SeongTae1,Jeong Junu1,Lee Soohyung1ORCID,Kim Jinsu1,Kutlu Çağlar1,Yi Andrew K.21,Nakamura Yasunobu34,Oh Seonjeong1,Ahn Danho1,Bae SungJae21,Choi Hyoungsoon2ORCID,Choi Jihoon1,Chong Yonuk5ORCID,Chung Woohyun1ORCID,Gkika Violeta1,Kim Jihn E.6,Kim Younggeun1,Ko Byeong Rok1,Miceli Lino1ORCID,Lee Doyu1,Lee Jiwon21,Lee Ki Woong1,Lee MyeongJae1,Matlashov Andrei1,Parashar Pallavi21,Seong Taehyeon1,Shin Yun Chang1,Uchaikin Sergey V.1ORCID,Youn SungWoo1ORCID,Semertzidis Yannis K.12ORCID

Affiliation:

1. Institute for Basic Science (IBS)

2. Korea Advanced Institute of Science and Technology (KAIST)

3. RIKEN Center for Quantum Computing (RQC)

4. The University of Tokyo

5. Sung Kyun Kwan University (SKKU)

6. Seoul National University

Abstract

We report an extensive high-sensitivity search for axion dark matter above 1 GHz at the Center for Axion and Precision Physics Research (CAPP). The cavity resonant search, exploiting the coupling between axions and photons, explored the frequency (mass) range of 1.025 GHz (4.24μeV) to 1.185 GHz (4.91μeV). We have introduced a number of innovations in this field, demonstrating the practical approach of optimizing all the relevant parameters of axion haloscopes, extending presently available technology. The CAPP 12 T magnet with an aperture of 320 mm made of Nb3Sn and NbTi superconductors surrounding a 37 l ultralight-weight copper cavity is expected to convert Dine-Fischler-Srednicki-Zhitnitsky axions into approximately 102 microwave photons per second. A powerful dilution refrigerator, capable of keeping the core system below 40 mK, combined with quantum-noise-limited readout electronics, achieved a total system noise of about 200 mK or below, which corresponds to a background of roughly 4×103 photons per second within the axion bandwidth. The combination of all those improvements provides unprecedented search performance, imposing the most stringent exclusion limits on axion-photon coupling in this frequency range to date. These results also suggest an experimental capability suitable for highly sensitive searches for axion dark matter above 1 GHz. Published by the American Physical Society 2024

Funder

Institute for Basic Science

Japan Society for the Promotion of Science

Publisher

American Physical Society (APS)

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