In-situ amplification of spin echoes within a kinetic inductance parametric amplifier
arXiv:2211.11333 · doi:10.1126/sciadv.adg1593
Abstract
The use of superconducting micro-resonators in combination with quantum-limited Josephson parametric amplifiers has in recent years lead to more than four orders of magnitude improvement in the sensitivity of pulsed Electron Spin Resonance (ESR) measurements. So far, the microwave resonators and amplifiers have been designed as separate components, largely due to the incompatibility of Josephson junction-based devices with even moderate magnetic fields. This has led to complex spectrometers that operate under strict environments, creating technical barriers for the widespread adoption of the technique. Here we circumvent this issue by inductively coupling an ensemble of spins directly to a weakly nonlinear microwave resonator, which is engineered from a magnetic field-resilient thin superconducting film. We perform pulsed ESR measurements with a ~pL effective mode volume and amplify the resulting spin signal using the same device, ultimately achieving a sensitivity of spins in a single-shot Hahn echo measurement at a temperature of 400 mK. We demonstrate the combined functionalities at fields as large as 254~mT, highlighting the technique's potential for application under more conventional ESR operating conditions.
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Cited by in corpus (11)
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- Three-Wave Mixing Quantum-Limited Kinetic Inductance Parametric Amplifier operating at 6 Tesla and near 1 Kelvin
- Dynamically enhancing qubit-photon interactions with anti-squeezing
- Granular Aluminum Parametric Amplifier for Low-Noise Measurements in Tesla Fields
- Selective Single and Double-Mode Quantum Limited Amplifier
- Modeling Josephson traveling-wave parametric amplifiers with electromagnetic and circuit co-simulation
- Nonlinear Co-simulation for Designing Kinetic Inductance Parametric Amplifiers
- Comparing Schemes for Creating Qudit Graph States from 16- & 128-dimensional Hilbert Space using Donors in Silicon
- Near-deterministic photon entanglement from a spin qudit in silicon using third quantisation
- Magnetic-Field and Temperature Limits of a Kinetic-Inductance Traveling-Wave Parametric Amplifier