Extended search for sub-eV axion-like resonances via four-wave mixing with a quasi-parallel laser collider in a high-quality vacuum system
arXiv:2004.10637 · doi:10.1093/ptep/ptaa075
Abstract
Resonance states of axion-like particles were searched for via four-wave mixing by focusing two-color pulsed lasers into a quasi-vacuum. A quasi-parallel collision system that allows probing of the sub-eV mass range was realized by focusing the combined laser fields with an off-axis parabolic mirror. A 0.10 mJ/34 fs Ti:Sapphire laser pulse and a 0.14 mJ/9 ns Nd:YAG laser pulse were spatiotemporally synchronized by sharing a common optical axis and focused into the vacuum system. No significant four-wave mixing signal was observed at the vacuum pressure of Pa , thereby providing upper bounds on the coupling-mass relation by assuming exchanges of scalar and pseudoscalar fields at a 95 % confidence level in the mass range below 0.21 eV. For this search, the experimental setup was substantially upgraded so that optical components are compatible with the requirements of the high-quality vacuum system, hence enabling the pulse power to be increased. With the increased pulse power, a new kind of pressure-dependent background photons emerged in addition to the known atomic four-wave mixing process. This paper shows the pressure dependence of these background photons and how to handle them in the search.
27 pages, 14 figures
References in corpus (9)
- Tests of the Gravitational Inverse-Square Law below the Dark-Energy Length Scale
- Particle Physics Implications of a Recent Test of the Gravitational Inverse Square Law
- First results from a microwave cavity axion search at 24 micro-eV
- Probing eV-scale axions with CAST
- An M Theory Solution to the Strong CP Problem and Constraints on the Axiverse
- Piezoelectrically Tuned Multimode Cavity Search for Axion Dark Matter
- The first search for sub-eV scalar fields via four-wave mixing at a quasi-parallel laser collider
- Fundamental Physics Explored with High Intensity Laser
- Probing the semi-macroscopic vacuum by higher-harmonic generation under focused intense laser fields