Trajectories without quantum uncertainties in composite systems with disparate energy spectra
Emil Zeuthen, Eugene S. Polzik, Farid Ya. Khalili

TL;DR
This paper introduces a novel method using periodic modulation and anti-noise paths to create quantum-mechanics-free subspaces in composite systems with vastly different energy spectra, enabling quantum trajectories without uncertainties.
Contribution
It presents a general approach to engineer QMFS in systems with disparate spectra without requiring narrowband cavities or close resonance conditions.
Findings
Overcomes limitations of previous methods for disparate systems.
Enables quantum trajectories without uncertainties in a broader range of systems.
Potential applications in gravitational wave detection and force sensing.
Abstract
It is well established that measurement-induced quantum back action (QBA) can be eliminated in composite systems by engineering so-called quantum-mechanics-free subspaces (QMFSs) of commuting variables, leading to a trajectory of a quantum system without quantum uncertainties. This situation can be realized in a composite system that includes a negative-mass subsystem, which can be implemented by, e.g., a polarized spin ensemble or a two-tone-driven optomechanical system. The realization of a trajectory without quantum uncertainties implies entanglement between the subsystems, and allows for measurements of motion, fields and forces with, in principle, unlimited precision. To date, these principles have been developed theoretically and demonstrated experimentally for a number of composite systems. However, the utility of the concept has been limited by the dominating requirement of…
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Taxonomy
TopicsMechanical and Optical Resonators · Geophysics and Sensor Technology · Experimental and Theoretical Physics Studies
