Solar Radio Emissions and Ultralight Dark Matter
Abstract
1. Introduction
2. Ultralight Dark Matter
3. Conversion in Solar Plasma
4. Propagation of the Converted Photons
5. Detection
6. Summary
Funding
Data Availability Statement
Conflicts of Interest
References
- Akerib, D.S.; Alsum, S.; Araújo, H.M.; Bai, X.; Bailey, A.J.; Balajthy, J.; Beltrame, P.; Bernard, E.P.; Bernstein, A.; Biesiadzinski, T.P.; et al. Results from a search for dark matter in the complete LUX exposure. Phys. Rev. Lett. 2017, 118, 021303. [Google Scholar] [CrossRef] [PubMed]
- Aprile, E.; Aprile, E.; Aalbers, J.; Agostini, F.; Alfonsi, M.; Althueser, L.; Amaro, F.D.; Anthony, M.; Arneodo, F.; Baudis, L.; et al. Dark Matter Search Results from a One Ton-Year Exposure of XENON1T. Phys. Rev. Lett. 2018, 121, 111302. [Google Scholar] [CrossRef] [PubMed]
- Meng, Y.; Wang, Z.; Tao, Y.; Abdukerim, A.; Bo, Z.; Chen, W.; Chen, X.; Chen, Y.; Cheng, C.; Cheng, Y.; et al. Dark Matter Search Results from the PandaX-4T Commissioning Run. Phys. Rev. Lett. 2021, 127, 261802. [Google Scholar] [CrossRef]
- Ipser, J.; Sikivie, P. Can Galactic Halos Made of Axions? Phys. Rev. Lett. 1983, 50, 925. [Google Scholar] [CrossRef]
- Svrcek, P.; Witten, E. Axions In String Theory. JHEP 2006, 6, 51. [Google Scholar] [CrossRef]
- Redondo, J.; Postma, M. Massive hidden photons as lukewarm dark matter. JCAP 2009, 2, 5. [Google Scholar] [CrossRef]
- Nelson, A.E.; Scholtz, J. Dark Light, Dark Matter and the Misalignment Mechanism. Phys. Rev. 2011, D84, 103501. [Google Scholar] [CrossRef]
- Arias, P.; Cadamuro, D.; Goodsell, M.; Jaeckel, J.; Redondo, J.; Ringwald, A. WISPy Cold Dark Matter. JCAP 2012, 1206, 13. [Google Scholar] [CrossRef]
- Graham, P.W.; Mardon, J.; Rajendran, S. Vector Dark Matter from Inflationary Fluctuations. Phys. Rev. 2016, D93, 103520. [Google Scholar] [CrossRef]
- Peccei, R.D.; Quinn, H.R. CP Conservation in the Presence of Instantons. Phys. Rev. Lett. 1977, 38, 1440–1443. [Google Scholar] [CrossRef]
- Peccei, R.D.; Quinn, H.R. Constraints Imposed by CP Conservation in the Presence of Instantons. Phys. Rev. D 1977, 16, 1791–1797. [Google Scholar] [CrossRef]
- Weinberg, S. A New Light Boson? Phys. Rev. Lett. 1978, 40, 223–226. [Google Scholar] [CrossRef]
- Wilczek, F. Problem of Strong P and T Invariance in the Presence of Instantons. Phys. Rev. Lett. 1978, 40, 279–282. [Google Scholar] [CrossRef]
- Preskill, J.; Wise, M.B.; Wilczek, F. Cosmology of the Invisible Axion. Phys. Lett. 1983, B120, 127–132. [Google Scholar] [CrossRef]
- Abbott, L.F.; Sikivie, P. A Cosmological Bound on the Invisible Axion. Phys. Lett. 1983, B120, 133–136. [Google Scholar] [CrossRef]
- Dine, M.; Fischler, W. The Not So Harmless Axion. Phys. Lett. 1983, B120, 137–141. [Google Scholar] [CrossRef]
- Vilenkin, A.; Everett, A.E. Cosmic strings and domain walls in models with Goldstone and pseudo-Goldstone bosons. Phys. Rev. Lett. 1982, 48, 1867. [Google Scholar] [CrossRef]
- Sikivie, P. Axions, domain walls, and the early universe. Phys. Rev. Lett. 1982, 48, 1156. [Google Scholar] [CrossRef]
- Holdom, B. Two U(1)’s and Epsilon Charge Shifts. Phys. Lett. 1986, 166B, 196–198. [Google Scholar] [CrossRef]
- Dienes, K.R.; Kolda, C.F.; March-Russell, J. Kinetic mixing and the supersymmetric gauge hierarchy. Nucl. Phys. B 1997, 492, 104–118. [Google Scholar] [CrossRef]
- Abel, S.A.; Schofield, B.W. Brane anti-brane kinetic mixing, millicharged particles and SUSY breaking. Nucl. Phys. B 2004, 685, 150–170. [Google Scholar] [CrossRef]
- Abel, S.A.; Goodsell, M.D.; Jaeckel, J.; Khoze, V.V.; Ringwald, A. Kinetic Mixing of the Photon with Hidden U(1)s in String Phenomenology. JHEP 2008, 7, 124. [Google Scholar] [CrossRef]
- Abel, S.A.; Jaeckel, J.; Khoze, V.V.; Ringwald, A. Illuminating the Hidden Sector of String Theory by Shining Light through a Magnetic Field. Phys. Lett. B 2008, 666, 66–70. [Google Scholar] [CrossRef]
- Goodsell, M.; Jaeckel, J.; Redondo, J.; Ringwald, A. Naturally Light Hidden Photons in LARGE Volume String Compactifications. JHEP 2009, 11, 27. [Google Scholar] [CrossRef]
- Co, R.T.; Pierce, A.; Zhang, Z.; Zhao, Y. Dark Photon Dark Matter Produced by Axion Oscillations. Phys. Rev. D 2019, 99, 075002. [Google Scholar] [CrossRef]
- Dror, J.A.; Harigaya, K.; Narayan, V. Parametric Resonance Production of Ultralight Vector Dark Matter. Phys. Rev. D 2019, 99, 035036. [Google Scholar] [CrossRef]
- Bastero-Gil, M.; Santiago, J.; Ubaldi, L.; Vega-Morales, R. Vector dark matter production at the end of inflation. J. Cosmol. Astropart. Phys. 2019, 4, 15. [Google Scholar] [CrossRef]
- Agrawal, P.; Kitajima, N.; Reece, M.; Sekiguchi, T.; Takahashi, F. Relic Abundance of Dark Photon Dark Matter. Phys. Lett. B 2020, 801, 135136. [Google Scholar] [CrossRef]
- Co, R.T.; Harigaya, K.; Pierce, A. Gravitational waves and dark photon dark matter from axion rotations. JHEP 2021, 12, 99. [Google Scholar] [CrossRef]
- Nakayama, K.; Yin, W. Hidden photon and axion dark matter from symmetry breaking. JHEP 2021, 10, 26. [Google Scholar] [CrossRef]
- Ema, Y.; Nakayama, K.; Tang, Y. Production of Purely Gravitational Dark Matter: The Case of Fermion and Vector Boson. JHEP 2019, 7, 60. [Google Scholar] [CrossRef]
- Kolb, E.W.; Long, A.J. Completely dark photons from gravitational particle production during the inflationary era. JHEP 2021, 3, 283. [Google Scholar] [CrossRef]
- Salehian, B.; Gorji, M.A.; Firouzjahi, H.; Mukohyama, S. Vector dark matter production from inflation with symmetry breaking. Phys. Rev. D 2021, 103, 063526. [Google Scholar] [CrossRef]
- Ahmed, A.; Grzadkowski, B.; Socha, A. Gravitational production of vector dark matter. JHEP 2020, 8, 59. [Google Scholar] [CrossRef]
- Nakai, Y.; Namba, R.; Wang, Z. Light Dark Photon Dark Matter from Inflation. JHEP 2020, 12, 170. [Google Scholar] [CrossRef]
- Nakayama, K.; Tang, Y. Gravitational Production of Hidden Photon Dark Matter in Light of the XENON1T Excess. Phys. Lett. B 2020, 811, 135977. [Google Scholar] [CrossRef]
- Firouzjahi, H.; Gorji, M.A.; Mukohyama, S.; Salehian, B. Dark photon dark matter from charged inflaton. JHEP 2021, 6, 50. [Google Scholar] [CrossRef]
- Bastero-Gil, M.; Santiago, J.; Ubaldi, L.; Vega-Morales, R. Dark photon dark matter from a rolling inflaton. JCAP 2022, 2, 15. [Google Scholar] [CrossRef]
- Firouzjahi, H.; Gorji, M.A.; Mukohyama, S.; Talebian, A. Dark matter from entropy perturbations in curved field space. Phys. Rev. D 2022, 105, 43501. [Google Scholar] [CrossRef]
- Sato, T.; Takahashi, F.; Yamada, M. Gravitational production of dark photon dark matter with mass generated by the Higgs mechanism. J. Cosmol. Astropart. Phys. 2022, 8, 22. [Google Scholar] [CrossRef]
- Alonso-Álvarez, G.; Hugle, T.; Jaeckel, J. Misalignment & Co.: (Pseudo-)scalar and vector dark matter with curvature couplings. J. Cosmol. Astropart. Phys. 2020, 2, 14. [Google Scholar]
- Nakayama, K. Vector Coherent Oscillation Dark Matter. JCAP 2019, 1910, 19. [Google Scholar] [CrossRef]
- Nakayama, K. Constraint on Vector Coherent Oscillation Dark Matter with Kinetic Function. JCAP 2020, 8, 33. [Google Scholar] [CrossRef]
- Long, A.J.; Wang, L.T. Dark Photon Dark Matter from a Network of Cosmic Strings. Phys. Rev. D 2019, 99, 063529. [Google Scholar] [CrossRef]
- de Salas, P.F.; Malhan, K.; Freese, K.; Hattori, K.; Valluri, M. On the estimation of the Local Dark Matter Density using the rotation curve of the Milky Way. JCAP 2019, 10, 37. [Google Scholar] [CrossRef]
- de Salas, P.F.; Widmark, A. Dark matter local density determination: Recent observations and future prospects. Rept. Prog. Phys. 2021, 84, 104901. [Google Scholar] [CrossRef]
- van Haarlem, M.P.; Wise, M.W.; Gunst, A.W.; Heald, G.; McKean, J.P.; Hessels, J.W.; de Bruyn, A.G.; Nijboer, R.; Swinbank, J.; Fallows, R.; et al. LOFAR: The LOw-Frequency ARray. Astron. Astrophys. 2013, 556, A2. [Google Scholar] [CrossRef]
- Dewdney, P.E.; Hall, P.J.; Schilizzi, R.T.; Lazio, T.J.L. The square kilometre array. Proc. IEEE 2009, 97, 1482–1496. [Google Scholar] [CrossRef]
- Kaiser, M.L.; Kucera, T.; Davila, J.; St Cyr, O.; Guhathakurta, M.; Christian, E. The STEREO mission: An introduction. Space Sci. Rev. 2008, 136, 5–16. [Google Scholar] [CrossRef]
- Pulupa, M.; Bale, S.D.; Bonnell, J.W.; Bowen, T.A.; Carruth, N.; Goetz, K.; Gordon, D.; Harvey, P.R.; Maksimovic, M.; Martínez-Oliveros, J.C.; et al. The solar probe plus radio frequency spectrometer: Measurement requirements, analog design, and digital signal processing. J. Geophys. Res. Space Phys. 2017, 122, 2836–2854. [Google Scholar] [CrossRef]
- Pshirkov, M.S.; Popov, S.B. Conversion of Dark matter axions to photons in magnetospheres of neutron stars. J. Exp. Theor. Phys. 2009, 108, 384–388. [Google Scholar] [CrossRef]
- Huang, F.P.; Kadota, K.; Sekiguchi, T.; Tashiro, H. Radio telescope search for the resonant conversion of cold dark matter axions from the magnetized astrophysical sources. Phys. Rev. D 2018, 97, 123001. [Google Scholar] [CrossRef]
- Hook, A.; Kahn, Y.; Safdi, B.R.; Sun, Z. Radio Signals from Axion Dark Matter Conversion in Neutron Star Magnetospheres. Phys. Rev. Lett. 2018, 121, 241102. [Google Scholar] [CrossRef]
- Hardy, E.; Song, N. Listening for Dark Photon Radio from the Galactic Centre. arXiv 2022, arXiv:2212.09756. [Google Scholar]
- Wang, J.W.; Bi, X.J.; Yao, R.M.; Yin, P.F. Exploring axion dark matter through radio signals from magnetic white dwarf stars. Phys. Rev. D 2021, 103, 115021. [Google Scholar] [CrossRef]
- Dessert, C.; Long, A.J.; Safdi, B.R. X-ray Signatures of Axion Conversion in Magnetic White Dwarf Stars. Phys. Rev. Lett. 2019, 123, 061104. [Google Scholar] [CrossRef] [PubMed]
- Dessert, C.; Dunsky, D.; Safdi, B.R. Upper limit on the axion-photon coupling from magnetic white dwarf polarization. Phys. Rev. D 2022, 105, 103034. [Google Scholar] [CrossRef]
- Mondal, S.; Oberoi, D.; Mohan, A. First Radio Evidence for Impulsive Heating Contribution to the Quiet Solar Corona. Astrophys. J. Lett. 2020, 895, L39. [Google Scholar] [CrossRef]
- Zhitnitsky, A.R. ’Nonbaryonic’ dark matter as baryonic color superconductor. JCAP 2003, 10, 10. [Google Scholar] [CrossRef]
- Liang, X.; Zhitnitsky, A. Axion field and the quark nugget’s formation at the QCD phase transition. Phys. Rev. D 2016, 94, 083502. [Google Scholar] [CrossRef]
- Ge, S.; Liang, X.; Zhitnitsky, A. Cosmological axion and a quark nugget dark matter model. Phys. Rev. D 2018, 97, 043008. [Google Scholar] [CrossRef]
- Ge, S.; Liang, X.; Zhitnitsky, A. Cosmological CP odd axion field as the coherent Berry’s phase of the Universe. Phys. Rev. D 2017, 96, 063514. [Google Scholar] [CrossRef]
- Ge, S.; Lawson, K.; Zhitnitsky, A. Axion quark nugget dark matter model: Size distribution and survival pattern. Phys. Rev. D 2019, 99, 116017. [Google Scholar] [CrossRef]
- Zhitnitsky, A. Solar Extreme UV radiation and quark nugget dark matter model. JCAP 2017, 10, 50. [Google Scholar] [CrossRef]
- Raza, N.; van Waerbeke, L.; Zhitnitsky, A. Solar corona heating by axion quark nugget dark matter. Phys. Rev. D 2018, 98, 103527. [Google Scholar] [CrossRef]
- Ge, S.; Siddiqui, M.S.R.; Van Waerbeke, L.; Zhitnitsky, A. Impulsive radio events in quiet solar corona and axion quark nugget dark matter. Phys. Rev. D 2020, 102, 123021. [Google Scholar] [CrossRef]
- An, H.; Huang, F.P.; Liu, J.; Xue, W. Radio-frequency Dark Photon Dark Matter across the Sun. Phys. Rev. Lett. 2021, 126, 181102. [Google Scholar] [CrossRef]
- De La Luz, V.; Lara, A.; Mendoza, E.; Shimojo, M. 3D Simulations of the Quiet Sun Radio Emission at Millimeter and Submillimeter Wavelengths. Geofis. Int. 2008, 47, 197–203. [Google Scholar] [CrossRef]
- Moncuquet, M.; Meyer-Vernet, N.; Issautier, K.; Pulupa, M.; Bonnell, J.W.; Bale, S.D.; de Wit, T.D.; Goetz, K.; Griton, L.; Harvey, P.R.; et al. First In Situ Measurements of Electron Density and Temperature from Quasi-thermal Noise Spectroscopy with Parker Solar Probe /FIELDS. Astrophys. J. Suppl. Ser. 2020, 246, 44. [Google Scholar] [CrossRef]
- Leblanc, Y.; Dulk, G.A.; Bougeret, J.L. Tracing the Electron Density from the Corona to 1 au. Sol. Phys. 1998, 183, 165–180. [Google Scholar] [CrossRef]
- Raffelt, G.; Stodolsky, L. Mixing of the Photon with Low Mass Particles. Phys. Rev. 1988, D37, 1237. [Google Scholar] [CrossRef]
- Redondo, J. Helioscope Bounds on Hidden Sector Photons. JCAP 2008, 807, 8. [Google Scholar] [CrossRef]
- Kontar, E.P.; Chen, X.; Chrysaphi, N.; Jeffrey, N.L.S.; Emslie, A.G.; Krupar, V.; Maksimovic, M.; Gordovskyy, M.; Browning, P.K. Anisotropic Radio-wave Scattering and the Interpretation of Solar Radio Emission Observations. Astrophys. J. 2019, 884, 122. [Google Scholar] [CrossRef]
- Thejappa, G.; MacDowall, R.J.; Kaiser, M.L. Monte Carlo Simulation of Directivity of Interplanetary Radio Bursts. Astrophys. J. 2007, 671, 894–906. [Google Scholar] [CrossRef]
- Bian, N.H.; Emslie, A.G.; Kontar, E.P. A Fokker–Planck Framework for Studying the Diffusion of Radio Burst Waves in the Solar Corona. Astrophys. J. 2019, 873, 33. [Google Scholar] [CrossRef]
- Acharya, S.K.; Chluba, J.; Sarkar, A. Comparison of numerical methods for computing the repeated Compton scattering of photons in isotropic media. Mon. Not. R. Astron. Soc. 2021, 507, 2052–2072. [Google Scholar] [CrossRef]
- Cooper, G. Compton Fokker–Planck equation for hot plasmas. Phys. Rev. D 1971, 3, 2312. [Google Scholar] [CrossRef]
- An, H.; Chen, X.; Ge, S.; Liu, J.; Luo, Y. Searching for Ultralight Dark Matter Conversion in Solar Corona using LOFAR Data. arXiv 2023, arXiv:2301.03622. [Google Scholar]
- Drukier, A.K.; Freese, K.; Spergel, D.N. Detecting Cold Dark Matter Candidates. Phys. Rev. D 1986, 33, 3495–3508. [Google Scholar] [CrossRef] [PubMed]
- Choi, K.; Rott, C.; Itow, Y. Impact of the dark matter velocity distribution on capture rates in the Sun. JCAP 2014, 5, 49. [Google Scholar] [CrossRef]
- Evans, N.W.; O’Hare, C.A.J.; McCabe, C. Refinement of the standard halo model for dark matter searches in light of the Gaia Sausage. Phys. Rev. D 2019, 99, 023012. [Google Scholar] [CrossRef]
- An, H.; Ge, S.; Guo, W.Q.; Huang, X.; Liu, J.; Lu, Z. Direct detection of dark photon dark matter using radio telescopes. arXiv 2022, arXiv:2207.05767. [Google Scholar]
- SKA-Collaboration. SKA1 System Baseline Design. 2013. Available online: https://www.skatelescope.org/wp-content/uploads/2014/11/SKA-TEL-SKO-0000002-AG-BD-DD-Rev01-SKA1_System_Baseline_Design.pdf (accessed on 2 March 2023).
- Nijboer, R.J.; Pandey-Pommier, M.; de Bruyn, A.G. LOFAR imaging capabilities and system sensitivity. arXiv 2013, arXiv:1308.4267. [Google Scholar]
- de Vos, M.; Gunst, A.W.; Nijboer, R. The LOFAR Telescope: System Architecture and Signal Processing. IEEE Proc. 2009, 97, 1431–1437. [Google Scholar] [CrossRef]
- McDermott, S.D.; Witte, S.J. Cosmological evolution of light dark photon dark matter. Phys. Rev. 2020, D101, 063030. [Google Scholar] [CrossRef]
- Hoang Nguyen, L.; Lobanov, A.; Horns, D. First results from the WISPDMX radio frequency cavity searches for hidden photon dark matter. JCAP 2019, 1910, 14. [Google Scholar] [CrossRef]
- Yang, Z.; Bethge, C.; Tian, H.; Tomczyk, S.; Morton, R.; Del Zanna, G.; McIntosh, S.W.; Karak, B.B.; Gibson, S.; Samanta, T.; et al. Global maps of the magnetic field in the solar corona. Science 2020, 369, 694–697. [Google Scholar] [CrossRef]
- Betz, M.; Caspers, F.; Gasior, M.; Thumm, M.; Rieger, S.W. First results of the CERN Resonant Weakly Interacting sub-eV Particle Search (CROWS). Phys. Rev. D 2013, 88, 075014. [Google Scholar] [CrossRef]
- Ehret, K.; Frede, M.; Ghazaryan, S.; Hildebrandt, M.; Knabbe, E.A.; Kracht, D.; Lindner, A.; List, J.; Meier, T.; Meyer, N.; et al. New ALPS Results on Hidden-Sector Lightweights. Phys. Lett. B 2010, 689, 149–155. [Google Scholar] [CrossRef]
- Ballou, R.; Deferne, G.; Finger, M., Jr.; Finger, M.; Flekova, L.; Hosek, J.; Kunc, S.; Macuchova, K.; Meissner, K.A.; Pugnat, P.; et al. New exclusion limits on scalar and pseudoscalar axionlike particles from light shining through a wall. Phys. Rev. D 2015, 92, 092002. [Google Scholar] [CrossRef]
- Ayala, A.; Domínguez, I.; Giannotti, M.; Mirizzi, A.; Straniero, O. Revisiting the bound on axion-photon coupling from Globular Clusters. Phys. Rev. Lett. 2014, 113, 191302. [Google Scholar] [CrossRef]
- Dolan, M.J.; Hiskens, F.J.; Volkas, R.R. Advancing globular cluster constraints on the axion-photon coupling. JCAP 2022, 10, 96. [Google Scholar] [CrossRef]
- Noordhuis, D.; Prabhu, A.; Witte, S.J.; Chen, A.Y.; Cruz, F.; Weniger, C. Novel Constraints on Axions Produced in Pulsar Polar Cap Cascades. arXiv 2022, arXiv:2209.09917. [Google Scholar]
- Li, H.J.; Guo, J.G.; Bi, X.J.; Lin, S.J.; Yin, P.F. Limits on axion-like particles from Mrk 421 with 4.5-year period observations by ARGO-YBJ and Fermi-LAT. Phys. Rev. D 2021, 103, 083003. [Google Scholar] [CrossRef]
- Li, H.J.; Bi, X.J.; Yin, P.F. Searching for axion-like particles with the blazar observations of MAGIC and Fermi-LAT. Chin. Phys. C 2022, 46, 085105. [Google Scholar] [CrossRef]
- Davies, J.; Meyer, M.; Cotter, G. Constraints on axionlike particles from a combined analysis of three flaring Fermi flat-spectrum radio quasars. arXiv 2022, arXiv:2211.03414. [Google Scholar]
- Ajello, M.; Albert, A.; Anderson, B.; Baldini, L.; Barbiellini, G.; Bastieri, D.; Bellazzini, R.; Bissaldi, E.; Blandford, R.D.; Bloom, E.D.; et al. Search for Spectral Irregularities due to Photon–Axionlike-Particle Oscillations with the Fermi Large Area Telescope. Phys. Rev. Lett. 2016, 116, 161101. [Google Scholar] [CrossRef]
- Anastassopoulos, V.; Aune, S.; Barth, K.; Belov, A.; Cantatore, G.; Carmona, J.M.; Castel, J.F.; Cetin, S.A.; Christensen, F.; Collar, J.I.; et al. New CAST Limit on the Axion-Photon Interaction. Nat. Phys. 2017, 13, 584–590. [Google Scholar] [CrossRef]
- De Panfilis, S.; Melissinos, A.C.; Moskowitz, B.E.; Rogers, J.T.; Semertzidis, Y.K.; Wuensch, W.; Halama, H.J.; Prodell, A.G.; Fowler, W.B.; Nezrick, F.A. Limits on the Abundance and Coupling of Cosmic Axions at 4.5-Microev < m(a) < 5.0-Microev. Phys. Rev. Lett. 1987, 59, 839. [Google Scholar] [CrossRef]
- Wuensch, W.; De Panfilis-Wuensch, S.; Semertzidis, Y.K.; Rogers, J.T.; Melissinos, A.C.; Halama, H.J.; Moskowitz, B.E.; Prodell, A.G.; Fowler, W.B.; Nezrick, F.A. Results of a Laboratory Search for Cosmic Axions and Other Weakly Coupled Light Particles. Phys. Rev. 1989, D40, 3153. [Google Scholar] [CrossRef]
- Hagmann, C.; Sikivie, P.; Sullivan, N.S.; Tanner, D.B. Results from a search for cosmic axions. Phys. Rev. 1990, D42, 1297–1300. [Google Scholar] [CrossRef]
- Asztalos, S.J.; Daw, E.; Peng, H.; Rosenberg, L.J.; Hagmann, C.; Kinion, D.; Stoeffl, W.; van Bibber, K.; Sikivie, P.; Sullivan, N.S.; et al. Large scale microwave cavity search for dark matter axions. Phys. Rev. 2001, D64, 092003. [Google Scholar] [CrossRef]
- Asztalos, S.J.; Carosi, G.; Hagmann, C.; Kinion, D.; Van Bibber, K.; Hotz, M.; Rosenberg, L.J.; Rybka, G.; Hoskins, J.; Hwang, J.; et al. A SQUID-based microwave cavity search for dark-matter axions. Phys. Rev. Lett. 2010, 104, 041301. [Google Scholar] [CrossRef]
- Du, N.; Force, N.; Khatiwada, R.; Lentz, E.; Ottens, R.; Rosenberg, L.J.; Rybka, G.; Carosi, G.; Woollett, N.; Bowring, D.; et al. A Search for Invisible Axion Dark Matter with the Axion Dark Matter Experiment. Phys. Rev. Lett. 2018, 120, 151301. [Google Scholar] [CrossRef]
- Navarro, J.F.; Frenk, C.S.; White, S.D.M. A Universal Density Profile from Hierarchical Clustering. Astrophys. J. 1997, 490, 493. [Google Scholar] [CrossRef]
- Braine, T.; Cervantes, R.; Crisosto, N.; Du, N.; Kimes, S.; Rosenberg, L.J.; Rybka, G.; Yang, J.; Bowring, D.; Chou, A.S.; et al. Extended Search for the Invisible Axion with the Axion Dark Matter Experiment. Phys. Rev. Lett. 2020, 124, 101303. [Google Scholar] [CrossRef]
- Boutan, C.; Jones, M.; LaRoque, B.H.; Oblath, N.S.; Cervantes, R.; Du, N.; Force, N.; Kimes, S.; Ottens, R.; Rosenberg, L.J.; et al. Piezoelectrically Tuned Multimode Cavity Search for Axion Dark Matter. Phys. Rev. Lett. 2018, 121, 261302. [Google Scholar] [CrossRef]
- Zhong, L.; Al Kenany, S.; Backes, K.M.; Brubaker, B.M.; Cahn, S.B.; Carosi, G.; Gurevich, Y.V.; Kindel, W.F.; Lamoreaux, S.K.; Lehnert, K.W.; et al. Results from phase 1 of the HAYSTAC microwave cavity axion experiment. Phys. Rev. D 2018, 97, 092001. [Google Scholar] [CrossRef]
- Backes, K.M.; Palken, D.A.; Kenany, S.A.; Brubaker, B.M.; Cahn, S.B.; Droster, A.; Hilton, G.C.; Ghosh, S.; Jackson, H.; Lamoreaux, S.K.; et al. A quantum-enhanced search for dark matter axions. Nature 2021, 590, 238–242. [Google Scholar] [CrossRef]
- Alesini, D.; Braggio, C.; Carugno, G.; Crescini, N.; D’Agostino, D.; Di Gioacchino, D.; Di Vora, R.; Falferi, P.; Gambardella, U.; Gatti, C.; et al. Search for invisible axion dark matter of mass ma = 43 μeV with the QUAX–aγ experiment. Phys. Rev. D 2021, 103, 102004. [Google Scholar] [CrossRef]
- Lee, S.; Ahn, S.; Choi, J.; Ko, B.R.; Semertzidis, Y.K. Axion Dark Matter Search around 6.7 μeV. Phys. Rev. Lett. 2020, 124, 101802. [Google Scholar] [CrossRef]
- Jeong, J.; Youn, S.; Bae, S.; Kim, J.; Seong, T.; Kim, J.E.; Semertzidis, Y.K. Search for Invisible Axion Dark Matter with a Multiple-Cell Haloscope. Phys. Rev. Lett. 2020, 125, 221302. [Google Scholar] [CrossRef] [PubMed]
- Kwon, O.; Lee, D.; Chung, W.; Ahn, D.; Byun, H.; Caspers, F.; Choi, H.; Choi, J.; Chong, Y.; Jeong, H.; et al. First Results from an Axion Haloscope at CAPP around 10.7 μeV. Phys. Rev. Lett. 2021, 126, 191802. [Google Scholar] [CrossRef]
- Bartram, C.; Braine, T.; Burns, E.; Cervantes, R.; Crisosto, N.; Du, N.; Korandla, H.; Leum, G.; Mohapatra, P.; Nitta, T.; et al. Search for Invisible Axion Dark Matter in the 3.3–4.2 μeV Mass Range. Phys. Rev. Lett. 2021, 127, 261803. [Google Scholar] [CrossRef]
- Crisosto, N.; Sikivie, P.; Sullivan, N.S.; Tanner, D.B.; Yang, J.; Rybka, G. ADMX SLIC: Results from a Superconducting LC Circuit Investigating Cold Axions. Phys. Rev. Lett. 2020, 124, 241101. [Google Scholar] [CrossRef] [PubMed]
- Lee, Y.; Yang, B.; Yoon, H.; Ahn, M.; Park, H.; Min, B.; Kim, D.; Yoo, J. Searching for Invisible Axion Dark Matter with an 18 T Magnet Haloscope. Phys. Rev. Lett. 2022, 128, 241805. [Google Scholar] [CrossRef] [PubMed]
- Kim, J.; Kwon, O.; Kutlu, C.; Chung, W.; Matlashov, A.; Uchaikin, S.; van Loo, A.F.; Nakamura, Y.; Oh, S.; Byun, H.; et al. Near-Quantum-Noise Axion Dark Matter Search at CAPP around 9.5 μeV. arXiv 2022, arXiv:2207.13597. [Google Scholar]
- Yi, A.K.; Ahn, S.; Kutlu, Ç.; Kim, J.; Ko, B.R.; Ivanov, B.I.; Byun, H.; van Loo, A.F.; Park, S.; Jeong, J.; et al. Axion Dark Matter Search around 4.55 μeV with Dine-Fischler-Srednicki-Zhitnitskii Sensitivity. Phys. Rev. Lett. 2022, 130, 071002. [Google Scholar] [CrossRef]
- Adair, C.M.; Altenmüller, K.; Anastassopoulos, V.; Arguedas Cuendis, S.; Baier, J.; Barth, K.; Belov, A.; Bozicevic, D.; Bräuninger, H.; Cantatore, G.; et al. Search for Dark Matter Axions with CAST-CAPP. Nat. Commun. 2022, 13, 6180. [Google Scholar] [CrossRef]
- Jewell, M.J.; Leder, A.F.; Backes, K.M.; Bai, X.; van Bibber, K.; Brubaker, B.M.; Cahn, S.B.; Droster, A.; Esmat, M.H.; Ghosh, S.; et al. New Results from HAYSTAC’s Phase II Operation with a Squeezed State Receiver. arXiv 2023, arXiv:2301.09721. [Google Scholar]
- Quiskamp, A.P.; McAllister, B.T.; Altin, P.; Ivanov, E.N.; Goryachev, M.; Tobar, M.E. Direct search for dark matter axions excluding ALP cogenesis in the 63- to 67-μeV range with the ORGAN experiment. Sci. Adv. 2022, 8, abq3765. [Google Scholar] [CrossRef]
- Alesini, D.; Braggio, C.; Carugno, G.; Crescini, N.; D’Agostino, D.; Di Gioacchino, D.; Di Vora, R.; Falferi, P.; Gallo, S.; Gambardella, U.; et al. Galactic axions search with a superconducting resonant cavity. Phys. Rev. D 2019, 99, 101101. [Google Scholar] [CrossRef]
- Alesini, D.; Babusci, D.; Braggio, C.; Carugno, G.; Crescini, N.; D’Agostino, D.; D’Elia, A.; Di Gioacchino, D.; Di Vora, R.; Falferi, P.; et al. Search for Galactic axions with a high-Q dielectric cavity. Phys. Rev. D 2022, 106, 052007. [Google Scholar] [CrossRef]
- Chang, H.; Chang, J.Y.; Chang, Y.C.; Chang, Y.H.; Chang, Y.H.; Chen, C.H.; Chen, C.F.; Chen, K.Y.; Chen, Y.F.; Chiang, W.Y.; et al. First Results from the Taiwan Axion Search Experiment with a Haloscope at 19.6 μeV. Phys. Rev. Lett. 2022, 129, 111802. [Google Scholar] [CrossRef] [PubMed]
- O’Hare, C. Cajohare/AxionLimits: AxionLimits. 2020. Available online: https://cajohare.github.io/AxionLimits/ (accessed on 2 March 2023). [CrossRef]
- Zaslavsky, A.; Meyer-Vernet, N.; Hoang, S.; Maksimovic, M.; Bale, S.D. On the antenna calibration of space radio instruments using the galactic background: General formulas and application to STEREO/WAVES. Radio Sci. 2011, 46, 1–7. [Google Scholar] [CrossRef]
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An, H.; Ge, S.; Liu, J. Solar Radio Emissions and Ultralight Dark Matter. Universe 2023, 9, 142. https://doi.org/10.3390/universe9030142
An H, Ge S, Liu J. Solar Radio Emissions and Ultralight Dark Matter. Universe. 2023; 9(3):142. https://doi.org/10.3390/universe9030142
Chicago/Turabian StyleAn, Haipeng, Shuailiang Ge, and Jia Liu. 2023. "Solar Radio Emissions and Ultralight Dark Matter" Universe 9, no. 3: 142. https://doi.org/10.3390/universe9030142
APA StyleAn, H., Ge, S., & Liu, J. (2023). Solar Radio Emissions and Ultralight Dark Matter. Universe, 9(3), 142. https://doi.org/10.3390/universe9030142