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Publications (9 of 9) Show all publications
Arakawa, J., Zaheer, M. H., Takhistov, V., Safronova, M. S., Eby, J. & Cheung, C. (2026). Multimessenger astronomy beyond the Standard Model: New window from quantum sensors. Journal of Cosmology and Astroparticle Physics, 2026(02), Article ID 026.
Open this publication in new window or tab >>Multimessenger astronomy beyond the Standard Model: New window from quantum sensors
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2026 (English)In: Journal of Cosmology and Astroparticle Physics, E-ISSN 1475-7516, Vol. 2026, no 02, article id 026Article in journal (Refereed) Published
Abstract [en]

Ultralight bosonic (ULB) fields with mass mϕ ≪ 1 eV often arise in theories beyond the Standard Model (SM). If such fields exist, violent astrophysical events that result in emission of gravitational wave, photon, or neutrino signals could also produce bursts of high-density relativistic ULB fields. Detection of such ULB fields in terrestrial or space-based laboratories correlated with other signals from transient astrophysical events opens a novel avenue for multimessenger astronomy. We show that quantum sensors are particularly well-suited to observe emitted scalar and pseudoscalar axion-like ULB fields coupled to SM. We demonstrate that multimessenger astronomy with ULB fields is possible even when accounting for matter screening effects.

Keywords
axions, dark matter detectors, dark matter theory, particle physics-cosmology connection
National Category
Subatomic Physics
Identifiers
urn:nbn:se:su:diva-254892 (URN)10.1088/1475-7516/2026/02/026 (DOI)001688490500002 ()
Available from: 2026-05-06 Created: 2026-05-06 Last updated: 2026-05-06Bibliographically approved
Maseizik, D., Eby, J., Seong, H. & Sigl, G. (2025). Detectability of accretion-induced bosenovae in the Milky Way. Physical Review D: covering particles, fields, gravitation, and cosmology, 111(6), Article ID 063017.
Open this publication in new window or tab >>Detectability of accretion-induced bosenovae in the Milky Way
2025 (English)In: Physical Review D: covering particles, fields, gravitation, and cosmology, ISSN 2470-0010, E-ISSN 2470-0029, Vol. 111, no 6, article id 063017Article in journal (Refereed) Published
Abstract [en]

We estimate collapse rates of axion stars in our galaxy based on the axion minicluster mass function of the Milky Way dark matter halo. We consider axionlike particles (ALP) with different temperature evolution of the axion mass, including the QCD axion with ma=50 μeV. Combining estimates for the present-day axion star mass function from our previous work with the axion star accretion model predicted by self-similar growth, we can infer the expected number of bosenovae occurring within the Milky Way. Our estimates suggest that for an observation time of tobs=1 yr, the majority of the up to ∼1013 bosenovae per galaxy occur in the densest miniclusters with initial overdensity parameter φ≲104. We discuss the detectability of such recurring axion bursts within our galactic vicinity and find that, for models with derivative couplings including axion-fermion interactions, potential broadband axion dark matter experiments can probe a large range of ALP masses ma≲10-6 eV and with moderate improvements even the quantum chromodynamics axion case. For axions with nonderivative-type interactions like the axion-photon coupling, our analysis suggests that optimistic predictions with order-one dark matter abundance of axion stars f⋆∼1 can be probed by dedicated burst searches.

National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-241894 (URN)10.1103/PhysRevD.111.063017 (DOI)001459608000001 ()2-s2.0-86000288520 (Scopus ID)
Available from: 2025-04-11 Created: 2025-04-11 Last updated: 2025-10-01Bibliographically approved
Budker, D., Eby, J., Safronova, M. S. & Tretiak, O. (2025). Search for fast-oscillating fundamental constants with space missions. EPJ Quantum Technology, 12, Article ID 39.
Open this publication in new window or tab >>Search for fast-oscillating fundamental constants with space missions
2025 (English)In: EPJ Quantum Technology, E-ISSN 2196-0763, Vol. 12, article id 39Article in journal (Refereed) Published
Abstract [en]

While it is possible to estimate the dark matter density at the Sun distance from the galactic center, this does not give information on actual dark matter density in the Solar system. There can be considerable local enhancement of dark matter density in the vicinity of gravitating centers, including the Sun, the Earth, as well as other planets in the solar system. Generic mechanisms for the formation of such halos were recently elucidated. In this work, we studies the possible halo dark matter overdensities and corresponding dark matter masses allowed for various objects in the solar system. We explore spacecraft missions to detect such halos with instruments such as quantum clocks, atomic and molecular spectrometers designed to search for fast (tens of hertz to gigahertz) oscillations of fundamental constants, highly sensitive comagnetometers, and other quantum sensors and sensor networks.

Keywords
Atomic clocks, Dark matter, Jupiter, Spacecraft missions, Spectroscopy
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-241817 (URN)10.1140/epjqt/s40507-025-00339-0 (DOI)001455849400001 ()2-s2.0-105001475184 (Scopus ID)
Available from: 2025-04-10 Created: 2025-04-10 Last updated: 2025-04-10Bibliographically approved
Abdalla, A., Buchmueller, O., Eby, J., Ellis, J., Pikovski, I. & Zupanič, E. (2025). Terrestrial Very-Long-Baseline Atom Interferometry: summary of the second workshop. EPJ Quantum Technology, 12, Article ID 42.
Open this publication in new window or tab >>Terrestrial Very-Long-Baseline Atom Interferometry: summary of the second workshop
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2025 (English)In: EPJ Quantum Technology, E-ISSN 2196-0763, Vol. 12, article id 42Article, review/survey (Refereed) Published
Abstract [en]

This summary of the second Terrestrial Very-Long-Baseline Atom Interferometry (TVLBAI) Workshop provides a comprehensive overview of our meeting held in London in April 2024 (Second Terrestrial Very-Long-Baseline Atom Interferometry Workshop, Imperial College, April 2024), building on the initial discussions during the inaugural workshop held at CERN in March 2023 (First Terrestrial Very-Long-Baseline Atom Interferometry Workshop, CERN, March 2023). Like the summary of the first workshop (Abend et al. in AVS Quantum Sci. 6:024701, 2024), this document records a critical milestone for the international atom interferometry community. It documents our concerted efforts to evaluate progress, address emerging challenges, and refine strategic directions for future large-scale atom interferometry projects. Our commitment to collaboration is manifested by the integration of diverse expertise and the coordination of international resources, all aimed at advancing the frontiers of atom interferometry physics and technology, as set out in a Memorandum of Understanding signed by over 50 institutions (Memorandum of Understanding for the Terrestrial Very Long Baseline Atom Interferometer Study).

National Category
Other Physics Topics
Identifiers
urn:nbn:se:su:diva-242889 (URN)10.1140/epjqt/s40507-025-00344-3 (DOI)2-s2.0-105003418478 (Scopus ID)
Available from: 2025-05-08 Created: 2025-05-08 Last updated: 2025-05-08Bibliographically approved
Carenza, P., Eby, J., Iarygina, O. & Marsh, M. C. (2024). Axion relic pockets — a theory of dark matter. Journal of High Energy Physics (JHEP), 2024(9), Article ID 23.
Open this publication in new window or tab >>Axion relic pockets — a theory of dark matter
2024 (English)In: Journal of High Energy Physics (JHEP), ISSN 1126-6708, E-ISSN 1029-8479, Vol. 2024, no 9, article id 23Article in journal (Refereed) Published
Abstract [en]

We propose a new theory of dark matter based on axion physics and cosmological phase transitions. We show that theories in which a gauge coupling increases through a first-order phase transition naturally result in ‘axion relic pockets’: regions of relic false vacua stabilised by the pressure from a kinematically trapped, hot axion gas. Axion relic pockets provide a viable and highly economical theory of dark matter: the macroscopic properties of the pockets depend only on a single parameter (the phase transition temperature). We describe the formation, evolution and present-day properties of axion relic pockets, and outline how their phenomenology is distinct from existing dark matter paradigms. We briefly discuss how laboratory experiments and astronomical observations can be used to test the theory, and identify gamma-ray observations of magnetised, dark-matter-dense environments as particularly promising.

Keywords
Particle Nature of Dark Matter, Phase Transitions in the Early Universe
National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-237853 (URN)10.1007/JHEP09(2024)023 (DOI)001307875800003 ()2-s2.0-85203317161 (Scopus ID)
Available from: 2025-01-16 Created: 2025-01-16 Last updated: 2025-10-01Bibliographically approved
Arakawa, J., Zaheer, M. H., Eby, J., Takhistov, V. & Safronova, M. S. (2024). Bosenovae with quadratically-coupled scalars in quantum sensing experiments. Journal of High Energy Physics (JHEP), 2024(8), Article ID 222.
Open this publication in new window or tab >>Bosenovae with quadratically-coupled scalars in quantum sensing experiments
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2024 (English)In: Journal of High Energy Physics (JHEP), ISSN 1126-6708, E-ISSN 1029-8479, Vol. 2024, no 8, article id 222Article in journal (Refereed) Published
Abstract [en]

Ultralight dark matter (ULDM) particles of mass mϕ ≲ 1 eV can form boson stars in DM halos. Collapse of boson stars leads to explosive bosenova emission of copious relativistic ULDM particles. In this work, we analyze the sensitivity of terrestrial and space-based experiments to detect such relativistic scalar ULDM particles interacting through quadratic couplings with Standard Model constituents, including electrons, photons, and gluons. We highlight key differences with searches for linear ULDM couplings. Screening of ULDM with quadratic couplings near the surface of the Earth can significantly impact observations in terrestrial experiments, motivating future space-based experiments. We demonstrate excellent ULDM discovery prospects, especially for quantum sensors, which can probe quadratic couplings orders below existing constraints by detecting bosenova events in the ULDM mass range 10−23 eV ≲ mϕ ≲ 10−5 eV. We also report updated constraints on quadratic couplings of ULDM in case it comprises cold DM.

Keywords
Models for Dark Matter, New Light Particles, Particle Nature of Dark Matter
National Category
Subatomic Physics
Identifiers
urn:nbn:se:su:diva-238076 (URN)10.1007/JHEP08(2024)222 (DOI)001302516100001 ()2-s2.0-85202888181 (Scopus ID)
Available from: 2025-01-21 Created: 2025-01-21 Last updated: 2025-01-21Bibliographically approved
Eby, J., Fox, P. J. & Kribs, G. D. (2024). Earth-catalyzed detection of magnetic inelastic dark matter with photons in large underground detectors. Journal of High Energy Physics (JHEP), 2024(6), Article ID 165.
Open this publication in new window or tab >>Earth-catalyzed detection of magnetic inelastic dark matter with photons in large underground detectors
2024 (English)In: Journal of High Energy Physics (JHEP), ISSN 1126-6708, E-ISSN 1029-8479, Vol. 2024, no 6, article id 165Article in journal (Refereed) Published
Abstract [en]

Inelastic dark matter with moderate splittings, O(few to 150) keV, can upscatter to an excited state in the Earth, with the excited state subsequently decaying, leaving a distinctive monoenergetic photon signal in large underground detectors. The photon signal can exhibit sidereal-daily modulation, providing excellent separation from backgrounds. Using a detailed numerical simulation, we examine this process as a search strategy for magnetic inelastic dark matter with the dark matter mass near the weak scale, where the upscatter to the excited state and decay proceed through the same magnetic dipole transition operator. At lower inelastic splittings, the scattering is dominated by moderate mass elements in the Earth with high spin, especially 27Al, while at larger splittings, 56Fe becomes the dominant target. We show that the proposed large volume gaseous detector CYGNUS will have excellent sensitivity to this signal. Xenon detectors also provide excellent sensitivity through the inelastic nuclear recoil signal, and if a future signal is seen, we show that the synergy among both types of detection can provide strong evidence for magnetic inelastic dark matter. In the course we have calculated nuclear response functions for elements relevant for scattering in the Earth, which are publicly available on GitHub.

Keywords
Particle Nature of Dark Matter, Specific BSM Phenomenology
National Category
Subatomic Physics
Identifiers
urn:nbn:se:su:diva-238631 (URN)10.1007/JHEP06(2024)165 (DOI)001254801000002 ()2-s2.0-85197218042 (Scopus ID)
Available from: 2025-01-27 Created: 2025-01-27 Last updated: 2025-01-27Bibliographically approved
Slattery, K., Wijewardhana, R., Eby, J. & Street, L. (2024). Probing bosonic overdensities with optomechanical sensing. Physical Review D: covering particles, fields, gravitation, and cosmology, 109(11), Article ID 115012.
Open this publication in new window or tab >>Probing bosonic overdensities with optomechanical sensing
2024 (English)In: Physical Review D: covering particles, fields, gravitation, and cosmology, ISSN 2470-0010, E-ISSN 2470-0029, Vol. 109, no 11, article id 115012Article in journal (Refereed) Published
Abstract [en]

Previous work has shown that optomechanical force sensing can be used for efficient detection of ultralight (sub-eV) dark matter candidates. We propose to extend the reach of this method to the search for ultralight dark matter in gravitationally bound configurations in the Milky Way. We consider three scenarios, each strongly motivated by previous studies: boson stars traveling in the galaxy with virial velocity; a bosonic halo centered around the Sun (a "solar halo"); and a bosonic halo centered around the Earth. For each case, we consider bound states composed of either scalar particles with a Yukawa coupling, or vector particles coupled to baryon minus lepton number charge. Accounting for all experimental constraints on coupling strength, we estimate the sensitivity reach of an optomechanical sensor search. We conclude that, although boson star encounters with Earth would be too infrequent to be detected in the relevant parameter space, current optomechanical force sensing technologies provide promising search capabilities for solar or Earth-bound halos.

National Category
Subatomic Physics
Identifiers
urn:nbn:se:su:diva-235625 (URN)10.1103/PhysRevD.109.115012 (DOI)001282728100008 ()2-s2.0-85196276515 (Scopus ID)
Available from: 2024-11-18 Created: 2024-11-18 Last updated: 2024-11-18Bibliographically approved
Abend, S., Eby, J., Pikovski, I. & Zupanic, E. (2024). Terrestrial very-long-baseline atom interferometry: Workshop summary. AVS Quantum Science (2), Article ID 024701.
Open this publication in new window or tab >>Terrestrial very-long-baseline atom interferometry: Workshop summary
2024 (English)In: AVS Quantum Science, ISSN 2639-0213, no 2, article id 024701Article, review/survey (Refereed) Published
Abstract [en]

This document presents a summary of the 2023 Terrestrial Very-Long-Baseline Atom Interferometry Workshop hosted by CERN. The workshop brought together experts from around the world to discuss the exciting developments in large-scale atom interferometer (AI) prototypes and their potential for detecting ultralight dark matter and gravitational waves. The primary objective of the workshop was to lay the groundwork for an international TVLBAI proto-collaboration. This collaboration aims to unite researchers from different institutions to strategize and secure funding for terrestrial large-scale AI projects. The ultimate goal is to create a roadmap detailing the design and technology choices for one or more kilometer–scale detectors, which will be operational in the mid-2030s. The key sections of this report present the physics case and technical challenges, together with a comprehensive overview of the discussions at the workshop together with the main conclusions.

National Category
Fusion, Plasma and Space Physics
Identifiers
urn:nbn:se:su:diva-235662 (URN)10.1116/5.0185291 (DOI)2-s2.0-85193477168 (Scopus ID)
Available from: 2024-11-15 Created: 2024-11-15 Last updated: 2024-11-15Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0003-0562-9177

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