Correlation spectroscopy with multi-qubit-enhanced phase estimation
H. Hainzer, D. Kiesenhofer, T. Ollikainen, M. Bock, F. Kranzl, M. K., Joshi, G. Yoeli, R. Blatt, T. Gefen, C. F. Roos

TL;DR
This paper extends correlation spectroscopy to multiple quantum systems with strong correlated dephasing, demonstrating that multiparticle quantum correlations can improve measurement precision without entanglement, with experimental validation on ion crystals.
Contribution
It models multi-particle correlation spectroscopy as a multi-parameter phase estimation problem and derives optimal sensing strategies, showing advantages over classical approaches.
Findings
Quantum correlations reduce phase uncertainties in multi-qubit systems.
Experimental demonstration with up to 91 qubits shows improved measurement precision.
Correlation spectroscopy applied to measure ion distances and frequency shifts.
Abstract
Ramsey interferometry is a widely used tool for precisely measuring transition frequencies between two energy levels of a quantum system, with applications in time-keeping, precision spectroscopy, quantum optics, and quantum information. Often, the coherence time of the quantum system surpasses the one of the oscillator probing the system, thereby limiting the interrogation time and associated spectral resolution. Correlation spectroscopy overcomes this limitation by probing two quantum systems with the same noisy oscillator for a measurement of their transition frequency difference; this technique has enabled very precise comparisons of atomic clocks. Here, we extend correlation spectroscopy to the case of multiple quantum systems undergoing strong correlated dephasing. We model Ramsey correlation spectroscopy with particles as a multi-parameter phase estimation problem and…
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Taxonomy
TopicsAdvanced Frequency and Time Standards · Scientific Measurement and Uncertainty Evaluation · Cold Atom Physics and Bose-Einstein Condensates
