Quantum Noise Limited Phased Arrays for Single-Electron Cyclotron Radiation Emission Spectroscopy
Stafford Withington, Christopher Thomas, Songyuan Zhao

TL;DR
This paper explores the design and optimization of quantum-noise-limited inward-looking phased array receivers for single-electron cyclotron radiation spectroscopy, aiming to improve neutrino mass measurements.
Contribution
It presents a unified framework for understanding signal, noise, and system behavior in inward-looking quantum phased arrays, addressing a gap in existing literature.
Findings
Developed a model for system-level analysis of inward-looking phased arrays.
Identified key design considerations for ultra-sensitive volumetric spectroscopy.
Provided insights into optimizing signal-to-noise ratios for single-electron detection.
Abstract
Neutrino oscillation experiments show that neutrinos have mass; however, the absolute mass scale is exceedingly difficult to measure and is currently unknown. A promising approach is to measure the energies of the electrons released during the radioactive decay of tritium. The energies of interest are within a few eV of the 18.6 keV end point, and so are mildly relativistic. By capturing the electrons in a static magnetic field and measuring the frequency of the cyclotron radiation emitted the initial energy can be determined, but end-point events are infrequent, the observing times short, and the signal to noise ratios low. To achieve a resolution of 10 meV, single-electron emission spectra need to be recorded over large fields of view with highly sensitive receivers. The principles of Cylotron Radiation Emission Spectroscopy (CRES) have already been demonstrated by Project 8, and…
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Taxonomy
TopicsSuperconducting and THz Device Technology · Gyrotron and Vacuum Electronics Research · Terahertz technology and applications
