Quantum Diamond Radio Frequency Signal Analyser based on Nitrogen-Vacancy centers
arXiv:2206.06734 · doi:10.1038/s44172-022-00017-4
Abstract
The fast development of radio-frequency (RF) technologies increases the need for compact, low consumption and broadband real-time RF spectral analyser. To overcome the electronic bottleneck encountered by electronic solutions, which limits the real time bandwidth to hundreds of MHz, we propose a new approach exploiting the quantum properties of the nitrogen-vacancy (NV) center in diamond. Here we describe a Quantum Diamond Signal Analyser (Q-DiSA) platform and characterize its performances. We successfully detect RF signals over a large tunable frequency range (25 GHz), a wide instantaneous bandwidth (up to 4 GHz), a MHz frequency resolution (down to 1 MHz), a ms temporal resolution and a large dynamic range (40 dB).
References in corpus (6)
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- Electron spin decoherence of single Nitrogen-Vacancy defects in diamond
- Magnetic imaging with an ensemble of Nitrogen Vacancy centers in diamond
- High-frequency and high-field optically detected magnetic resonance of nitrogen-vacancy centers in diamond
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Cited by in corpus (7)
- Quantum enhanced radio detection and ranging with solid spins
- Wideband Coherent Microwave Conversion via Magnon Nonlinearity in Hybrid Quantum System
- Radiofrequency receiver based on isotropic solid-state spins
- Quantum Frequency Mixing using an N- Diamond Microscope
- Quantum Sensing Enhancement through a Nuclear Spin Register in Nitrogen-Vacancy Centers in Diamond
- Quantum spectral analysis by continuous measurement of Landau-Zener transitions
- Interplay between dressed and strong-axial-field states in Nitrogen-Vacancy centers for quantum sensing and computation