Quantum Enhanced Sensing Based On Time Reversal Of Nonlinear Dynamics


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Quantum‐Enhanced Sensing Based on Time Reversal of Entangling Interactions


Quantum‐Enhanced Sensing Based on Time Reversal of Entangling Interactions

Author: Daniel Linnemann

language: en

Publisher: Springer

Release Date: 2018-07-28


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Quantum mechanics entails effects like superpositions and entanglement, which have no classical counterparts. From a technological standpoint these counterintuitive quantum aspects can be viewed as an unexploited resource that can be harnessed to support various tasks, e.g. in the domains of computation, communication, and metrology. In many applications, however, the potential of nonclassical states cannot practically be exploited due to detection inefficiencies. The authors address this limitation by experimentally realizing a novel detection scheme in which entangling interactions are time reversed. In this way, nonclassical many-particle states are disentangled, allowing them to be detected in a robust and technically feasible manner. In the context of quantum metrology, these nonlinear readout techniques extend the class of entangled probe states that can be leveraged for sensing applications without being limited by finite detector resolution. The authors present an active atom interferometer, where both the entangled state preparation and disentangling readout involve parametric amplification. This “SU(1,1)” interferometer is implemented with the help of spinor Bose–Einstein condensates, where amplification is implemented by atomic collisions leading to spin exchange.

Quantum-enhanced Sensing Based on Time Reversal of Nonlinear Dynamics


Quantum-enhanced Sensing Based on Time Reversal of Nonlinear Dynamics

Author: Daniel Linnemann

language: en

Publisher:

Release Date: 2017


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Ultracold Atoms for Foundational Tests of Quantum Mechanics


Ultracold Atoms for Foundational Tests of Quantum Mechanics

Author: Robert J. Lewis-Swan

language: en

Publisher: Springer

Release Date: 2016-06-25


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This thesis presents a theoretical investigation into the creation and exploitation of quantum correlations and entanglement among ultracold atoms. Specifically, it focuses on these non-classical effects in two contexts: (i) tests of local realism with massive particles, e.g., violations of a Bell inequality and the EPR paradox, and (ii) realization of quantum technology by exploitation of entanglement, for example quantum-enhanced metrology. In particular, the work presented in this thesis emphasizes the possibility of demonstrating and characterizing entanglement in realistic experiments, beyond the simple “toy-models” often discussed in the literature. The importance and relevance of this thesis are reflected in a spate of recent publications regarding experimental demonstrations of the atomic Hong-Ou-Mandel effect, observation of EPR entanglement with massive particles and a demonstration of an atomic SU(1,1) interferometer. With a separate chapter on each of these systems, this thesis is at the forefront of current research in ultracold atomic physics.