Generation and transfer of entangled states between two connected microtoroidal cavities: analysis of different types of coupling
Emilio H. S. Sousa, A. Vidiella-Barranco, J. A. Roversi

TL;DR
This paper explores how entangled states can be generated and transferred between two microtoroidal cavities using different coupling methods, revealing unique entanglement properties and effects of losses.
Contribution
It compares entanglement transfer and generation via bridge qubit and evanescent wave couplings, highlighting new possibilities for multipartite and bipartite entanglement.
Findings
High-fidelity entanglement transfer is possible regardless of coupling type.
Bridge qubit coupling enables generation of 4-partite entangled states.
Evanescent wave coupling allows bipartite entanglement between different cavities.
Abstract
We investigate the generation and transfer of entangled states between two coupled microtoroidal cavities considering two different types of couplings, namely i) via a bridge qubit and ii) via evanescent fields. The cavities support two counter-propagating whispering-gallery modes (WGMs) that may also interact with each other. We firstly show that it is possible to transfer, with high fidelity, a maximally entangled state between the two modes of the first cavity (cavity 1) to the two modes of the second cavity (cavity 2), independently of the type of coupling. Interesting differences, though, arise concerning the generation of entangled states from initial product states; if the cavities are coupled via a bridge qubit, we show that it is possible to generate a 4-partite entangled state involving all four cavity modes. On the other hand, contrarily to what happens in the qubit coupling…
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Taxonomy
TopicsPhotonic and Optical Devices · Mechanical and Optical Resonators · Neural Networks and Reservoir Computing
