Quantum sensors based on weak-value amplification cannot overcome decoherence
arXiv:1211.0261 · doi:10.1103/PhysRevA.87.012115
Abstract
Sensors that harness exclusively quantum phenomena (such as entanglement) can achieve superior performance compared to those employing only classical principles. Recently, a technique based on postselected, weakly-performed measurements has emerged as a method of overcoming technical noise in the detection and estimation of small interaction parameters, particularly in optical systems. The question of which other types of noise may be combatted remains open. We here analyze whether the effect can overcome decoherence in a typical field sensing scenario. Benchmarking a weak, postselected measurement strategy against a strong, direct strategy we conclude that no advantage is achievable, and that even a small amount of decoherence proves catastrophic to the weak-value amplification technique.
Published version with improvements to presentation, including clarifying our understanding of technical noise and quantum noise
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Cited by in corpus (5)
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- Postselection induced entanglement swapping from a vacuum--excitation entangled state to separate quantum systems
- A Bayesian quasi-probability approach to inferring the past of quantum observables