Impedance Matching to Axion Dark Matter: Considerations of the Photon-Electron Interaction
arXiv:2105.02005 · doi:10.1088/1475-7516/2021/12/033
Abstract
We introduce the concept of impedance matching to axion dark matter by posing the question of why axion detection is difficult, even though there is enough power in each square meter of incident dark-matter flux to energize a LED light bulb. By quantifying backreaction on the axion field, we show that a small axion-photon coupling does not by itself prevent an order-unity fraction of the dark matter from being absorbed through optimal impedance match. We further show, in contrast, that the electromagnetic charges and the self-impedance of their coupling to photons provide the principal constraint on power absorption integrated across a search band. Using the equations of axion electrodynamics, we demonstrate stringent limitations on absorbed power in linear, time-invariant, passive receivers. Our results yield fundamental constraints, arising from the photon-electron interaction, on improving integrated power absorption beyond the cavity haloscope technique. The analysis also has significant practical implications, showing apparent tension with the sensitivity projections for a number of planned axion searches. We additionally provide a basis for more accurate signal power calculations and calibration models, especially for receivers using multi-wavelength open configurations such as dish antennas and dielectric haloscopes.
18 pages, 3 figures, plus references and appendices. v2: Section added on the practical implications of the work. v3: Text matches JCAP publication version. Minor editorial adjustments
References in corpus (18)
- Amplification and squeezing of quantum noise with a tunable Josephson metamaterial
- Dielectric Haloscopes: A New Way to Detect Axion Dark Matter
- A quantum-enhanced search for dark matter axions
- First results from a microwave cavity axion search at 24 micro-eV
- Searching for Dark Matter with a Superconducting Qubit
- The search for low-mass axion dark matter with ABRACADABRA-10cm
- Demonstration of a Tunable-Bandwidth White Light Interferometer using Anomalous Dispersion in Atomic Vapor
- Dielectric Haloscopes to Search for Axion Dark Matter: Theoretical Foundations
- On the electromagnetic properties of active media
- Axion Dark Matter eXperiment: Detailed Design and Operations
- A Parametrically Enhanced Hidden Photon Search
- Search for Cosmic Axions using an Optical Interferometer
- Phase-matching of multiple-cavity detectors for dark matter axion search
- Accelerating dark-matter axion searches with quantum measurement technology
- First results from the HAYSTAC axion search
- Julian Schwinger: Nuclear Physics, the Radiation Laboratory, Renormalized QED, Source Theory, and Beyond
- Exclusion Limits on Hidden-Photon Dark Matter near 2 neV from a Fixed-Frequency Superconducting Lumped-Element Resonator
- Improving Dark Matter Axion Searches with Active Resonators
Cited by in corpus (5)
- Projected Sensitivity of DMRadio-m: A Search for the QCD Axion Below eV
- Introducing DMRadio-GUT, a search for GUT-scale QCD axions
- Josephson junction-based axion detection through resonant activation
- Physical Signatures of Fermion-Coupled Axion Dark Matter
- On the use of dielectric elements in axion searches with microwave resonant cavities