Quantum-Enhanced Multi-Parameter Sensing in a Single Mode
Christophe H. Valahu, Matthew P. Stafford, Zixin Huang, Vassili G. Matsos, Maverick J. Millican, Teerawat Chalermpusitarak, Nicolas C. Menicucci, Joshua Combes, Ben Q. Baragiola, and Ting Rei Tan

TL;DR
This paper demonstrates quantum-enhanced measurement of position and momentum in a single mode, achieving precision beyond the standard quantum limit using non-classical states and adaptive algorithms.
Contribution
It introduces a method to measure multiple incompatible observables simultaneously with quantum states that evade measurement backaction, surpassing classical sensing limits.
Findings
Achieved up to 5.1 dB gain over the SQL in position and momentum measurements.
Used grid states and Bayesian inference for displacement estimation below SQL.
Demonstrated simultaneous estimation of number and phase with quantum resource states.
Abstract
Precision metrology underpins scientific and technological advancements. Quantum metrology offers a pathway to surpass classical sensing limits by leveraging quantum states and measurement strategies. However, measuring multiple incompatible observables suffers from quantum backaction, where measurement of one observable pollutes a subsequent measurement of the other. This is a manifestation of Heisenberg's uncertainty principle for two non-commuting observables, such as position and momentum. Here, we demonstrate measurements of small changes in position and momentum where the uncertainties are simultaneously reduced below the standard quantum limit (SQL). We measure using tailored, highly non-classical states that ideally evade measurement backactions. The states are deterministically prepared in the single mode of the mechanical motion of a trapped ion…
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Taxonomy
TopicsMechanical and Optical Resonators · Quantum Information and Cryptography · Photonic and Optical Devices
