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In cavity-based axion dark matter detectors, quantum noise remains a primary barrier to achieving the scan rate necessary for a comprehensive search of axion parameter space.
1904
Earlier work this paper cites.
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1980
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1981
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1982
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D.F. Walls and G.J. Milburn, Quantum Optics (Springer Berlin Heidelberg, 2008)
2008
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2010
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A. A. Clerk, M. H. Devoret, S. M. Girvin, Florian Marquardt, and R. J. Schoelkopf, “Introduction to quantum noise, measurement, and amplification,” Rev. Mod. Phys. 82
2010
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Simon E. Nigg, Hanhee Paik, Brian Vlastakis, Gerhard Kirchmair, Shyam Shankar, Luigi Frunzio, MH Devoret, RJ Schoelkopf, and SM Girvin, “Black-box superconducting circuit quantization,” Phys. Rev. Lett. 108
2012
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S. K. Lamoreaux, K. A. van Bibber, K. W. Lehnert, and G. Carosi, “Analysis of single-photon and linear amplifier detectors for microwave cavity dark matter axion searches,” Phys. Rev. D 88
2013
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A. Metelmann and A. A. Clerk, “Nonreciprocal photon transmission and amplification via reservoir engineering,” Phys. Rev. X 5
2015
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Benjamin J. Chapman, Bradley A. Moores, Eric I. Rosenthal, Joseph Kerckhoff, and K. W. Lehnert, “General purpose multiplexing device for cryogenic microwave systems,” Appl. Phys. Lett. 108
2016
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2016
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Eli Megidish, Joseph Broz, Nicole Greene, and Hartmut Häffner, “Improved Test of Local Lorentz Invariance from a Deterministic Preparation of Entangled States,” Phys. Rev. Lett. 122
2019
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M. Malnou, D. A. Palken, B. M. Brubaker, Leila R. Vale, Gene C. Hilton, and K. W. Lehnert, “Squeezed vacuum used to accelerate the search for a weak classical signal,” Phys. Rev. X 9
2019
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K. M. Backes et al. , “A quantum-enhanced search for dark matter axions,” Nature 590
2020
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T. Braine et al. (ADMX Collaboration), “Extended search for the invisible axion with the Axion Dark Matter Experiment,” Phys. Rev. Lett. 124
2020
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S. Lee, S. Ahn, J. Choi, B. R. Ko, and Y. K. Semertzidis, “Axion dark matter search around 6.7 μ eV 6.7\text{ }\text{ }\mu\mathrm{eV} ,” Phys. Rev. Lett. 124
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2017
Cited alongside, same era.
S. Al Kenany et al. , “Design and operational experience of a microwave cavity axion detector for the 20 − 100 μ eV 20-100\text{ }\mu\mathrm{eV} range,” Nucl. Instrum. Meth. A 854
2017
Cited alongside, same era.
L. Zhong et al. , “Results from phase 1 of the HAYSTAC microwave cavity axion experiment,” Phys. Rev. D 97
2018
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N. Du et al. (ADMX Collaboration), “Search for invisible axion dark matter with the Axion Dark Matter Experiment,” Phys. Rev. Lett. 120
2018
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M. Tse et al. , “Quantum-enhanced advanced LIGO detectors in the era of gravitational-wave astronomy,” Phys. Rev. Lett. 123
2019
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2020
Later among the works it cites.
Daniel Palken, Enhancing the scan rate for axion dark matter: Quantum noise evasion and maximally informative analysis , Ph.D. thesis, University of Colorado Boulder (2020)
2020
Later among the works it cites.
T.-C. Chien, O. Lanes, C. Liu, X. Cao, P. Lu, S. Motz, G. Liu, D. Pekker, and M. Hatridge, “Multiparametric amplification and qubit measurement with a Kerr-free Josephson ring modulator,” Phys. Rev. A 101
2020
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Akash V. Dixit, Srivatsan Chakram, Kevin He, Ankur Agrawal, Ravi K. Naik, David I. Schuster, and Aaron Chou, “Searching for Dark Matter with a Superconducting Qubit,” Phys. Rev. Lett. 126
2021
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