Programmable frequency-bin quantum states in a nano-engineered silicon
device
- URL: http://arxiv.org/abs/2212.13191v1
- Date: Mon, 26 Dec 2022 15:31:26 GMT
- Title: Programmable frequency-bin quantum states in a nano-engineered silicon
device
- Authors: Marco Clementi, Federico A. Sabattoli, Massimo Borghi, Laur\`ene
Youssef, Linda Gianini, Nicola Bergamasco, Houssein El Dirani, Noemi
Tagliavacche, Camille Petit-Etienne, Erwine Pargon, John E. Sipe, Marco
Liscidini, Corrado Sciancalepore, Matteo Galli, Daniele Bajoni
- Abstract summary: Photonic qubits should be controllable on-chip and noise-tolerant when transmitted over optical networks for practical applications.
We demonstrate a programmable silicon nano-photonic chip generating frequency-bin entangled photons, an encoding scheme compatible with long-range transmission over optical links.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Photonic qubits should be controllable on-chip and noise-tolerant when
transmitted over optical networks for practical applications. Furthermore,
qubit sources should be programmable and have high brightness to be useful for
quantum algorithms and grant resilience to losses. However, widespread encoding
schemes only combine at most two of these properties. Here, we overcome this
hurdle by demonstrating a programmable silicon nano-photonic chip generating
frequency-bin entangled photons, an encoding scheme compatible with long-range
transmission over optical links. The emitted quantum states can be manipulated
using existing telecommunication components, including active devices that can
be integrated in silicon photonics. As a demonstration, we show our chip can be
programmed to generate the four computational basis states, and the four
maximally-entangled Bell states, of a two-qubits system. Our device combines
all the key-properties of on-chip state reconfigurability and dense
integration, while ensuring high brightness, fidelity, and purity.
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