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Probing ALPs and the Axiverse with Superconducting Radiofrequency Cavities
Axionlike particles (ALPs) with couplings to electromagnetism have long been postulated as extensions to the standard model. String theory predicts an “axiverse” of many light axions, some of which may make up the dark matter in the Universe and/or solve the strong CP problem. We propose a new exper...
Autores principales: | , , , |
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Lenguaje: | eng |
Publicado: |
2019
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1103/PhysRevLett.123.021801 http://cds.cern.ch/record/2657125 |
_version_ | 1780961190626721792 |
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author | Bogorad, Zachary Hook, Anson Kahn, Yonatan Soreq, Yotam |
author_facet | Bogorad, Zachary Hook, Anson Kahn, Yonatan Soreq, Yotam |
author_sort | Bogorad, Zachary |
collection | CERN |
description | Axionlike particles (ALPs) with couplings to electromagnetism have long been postulated as extensions to the standard model. String theory predicts an “axiverse” of many light axions, some of which may make up the dark matter in the Universe and/or solve the strong CP problem. We propose a new experiment using superconducting radio-frequency (SRF) cavities which is sensitive to light ALPs independent of their contribution to the cosmic dark matter density. Off-shell ALPs will source cubic nonlinearities in Maxwell’s equations, such that if a SRF cavity is pumped at frequencies ω1 and ω2, in the presence of ALPs there will be power in modes with frequencies 2ω1±ω2. Our setup is similar in spirit to light-shining-through-walls experiments, but because the pump field itself effectively converts the ALP back to photons inside a single cavity, our sensitivity scales differently with the strength of the external fields, allowing for superior reach as compared to experiments like OSQAR while utilizing current technology. Furthermore, a well-defined program of increasing sensitivity has a guaranteed physics result: the first observation of the Euler-Heisenberg term of low-energy QED at energies below the electron mass. We discuss how the ALP contribution may be separated from the QED contribution by a suitable choice of pump modes and cavity geometry, and conclude by describing the ultimate sensitivity of our proposed program of experiments to ALPs. |
id | cern-2657125 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2019 |
record_format | invenio |
spelling | cern-26571252021-07-15T03:52:05Zdoi:10.1103/PhysRevLett.123.021801http://cds.cern.ch/record/2657125engBogorad, ZacharyHook, AnsonKahn, YonatanSoreq, YotamProbing ALPs and the Axiverse with Superconducting Radiofrequency Cavitiesphysics.ins-detDetectors and Experimental Techniqueshep-exParticle Physics - Experimenthep-phParticle Physics - PhenomenologyAxionlike particles (ALPs) with couplings to electromagnetism have long been postulated as extensions to the standard model. String theory predicts an “axiverse” of many light axions, some of which may make up the dark matter in the Universe and/or solve the strong CP problem. We propose a new experiment using superconducting radio-frequency (SRF) cavities which is sensitive to light ALPs independent of their contribution to the cosmic dark matter density. Off-shell ALPs will source cubic nonlinearities in Maxwell’s equations, such that if a SRF cavity is pumped at frequencies ω1 and ω2, in the presence of ALPs there will be power in modes with frequencies 2ω1±ω2. Our setup is similar in spirit to light-shining-through-walls experiments, but because the pump field itself effectively converts the ALP back to photons inside a single cavity, our sensitivity scales differently with the strength of the external fields, allowing for superior reach as compared to experiments like OSQAR while utilizing current technology. Furthermore, a well-defined program of increasing sensitivity has a guaranteed physics result: the first observation of the Euler-Heisenberg term of low-energy QED at energies below the electron mass. We discuss how the ALP contribution may be separated from the QED contribution by a suitable choice of pump modes and cavity geometry, and conclude by describing the ultimate sensitivity of our proposed program of experiments to ALPs.Axion-like particles (ALPs) with couplings to electromagnetism have long been postulated as extensions to the Standard Model. String theory predicts an "axiverse" of many light axions, some of which may make up the dark matter in the universe and/or solve the strong CP problem. We propose a new experiment using superconducting radiofrequency (SRF) cavities which is sensitive to light ALPs independent of their contribution to the cosmic dark matter density. Off-shell ALPs will source cubic nonlinearities in Maxwell's equations, such that if a SRF cavity is pumped at frequencies $\omega_1$ and $\omega_2$, in the presence of ALPs there will be power in modes with frequencies $2\omega_1 \pm \omega_2$. Our setup is similar in spirit to light-shining-through-walls (LSW) experiments, but because the pump field itself effectively converts the ALP back to photons inside a single cavity, our sensitivity scales differently with the strength of the external fields, allowing for superior reach as compared to experiments like OSQAR while utilizing current technology. Furthermore, a well-defined program of increasing sensitivity has a guaranteed physics result: the first observation of the Euler-Heisenberg term of low-energy QED at energies below the electron mass. We discuss how the ALP contribution may be separated from the QED contribution by a suitable choice of pump modes and cavity geometry, and conclude by describing the ultimate sensitivity of our proposed program of experiments to ALPs.arXiv:1902.01418CERN-TH-2019-009oai:cds.cern.ch:26571252019-02-04 |
spellingShingle | physics.ins-det Detectors and Experimental Techniques hep-ex Particle Physics - Experiment hep-ph Particle Physics - Phenomenology Bogorad, Zachary Hook, Anson Kahn, Yonatan Soreq, Yotam Probing ALPs and the Axiverse with Superconducting Radiofrequency Cavities |
title | Probing ALPs and the Axiverse with Superconducting Radiofrequency Cavities |
title_full | Probing ALPs and the Axiverse with Superconducting Radiofrequency Cavities |
title_fullStr | Probing ALPs and the Axiverse with Superconducting Radiofrequency Cavities |
title_full_unstemmed | Probing ALPs and the Axiverse with Superconducting Radiofrequency Cavities |
title_short | Probing ALPs and the Axiverse with Superconducting Radiofrequency Cavities |
title_sort | probing alps and the axiverse with superconducting radiofrequency cavities |
topic | physics.ins-det Detectors and Experimental Techniques hep-ex Particle Physics - Experiment hep-ph Particle Physics - Phenomenology |
url | https://dx.doi.org/10.1103/PhysRevLett.123.021801 http://cds.cern.ch/record/2657125 |
work_keys_str_mv | AT bogoradzachary probingalpsandtheaxiversewithsuperconductingradiofrequencycavities AT hookanson probingalpsandtheaxiversewithsuperconductingradiofrequencycavities AT kahnyonatan probingalpsandtheaxiversewithsuperconductingradiofrequencycavities AT soreqyotam probingalpsandtheaxiversewithsuperconductingradiofrequencycavities |