Quantum state transfer and input-output theory with time reversal
Kevin Randles, Steven van Enk

TL;DR
This paper develops a theoretical framework for quantum state transfer that involves manipulating the intermediate photon wave packet through time reversal and frequency translation, leading to improved transfer fidelity.
Contribution
It introduces a unitary transformation approach that modifies the photon wave packet to enhance quantum state transfer between systems with different spectral properties.
Findings
Unitary transformation U effectively reverses and stretches photon wave packets.
Modified photon wave packets improve quantum state transfer fidelity.
Numerical simulations confirm enhanced transfer in three-level Λ-systems.
Abstract
Being able to reliably transfer the quantum state from one system to another is crucial to developing quantum networks. A standard way to accomplish this transfer of information is by making use of an intermediate information carrier (e.g., a photon) that is emitted by the first system and absorbed by the second. For such a scenario one can develop an effective description by eliminating the intermediate degrees of freedom, which yields an effective direct coupling between the two systems. If, however, the spectral properties of the two systems are different, the photon's time-frequency shape needs to be appropriately modified before it reaches the second system. We study here the effective description that results when we thus manipulate the intermediate photon. We examine a unitary transformation, , that time reverses, frequency translates, and stretches the photon wave packet. We…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum optics and atomic interactions · Spectroscopy and Quantum Chemical Studies
