H2020Индивидуална стипендия2020–2023

COHESiV · Coherent Optomechanical and Hyperfine interactions Engineering with Silicon-Vacancy impurities in diamond for quantum networks

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2020-02-01 → 2023-06-16
Финансиране от ЕС
253 052 €
Участници
2
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Дефекти от силициеви атоми в диаманти се използват за управление на квантова информация чрез светлина и механични вибрации. Те помагат за създаването на възли за квантови мрежи, които могат да обработват сложни задачи по-бързо от днешните суперкомпютри.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Coherent Optomechanical and Hyperfine interactions Engineering with Silicon-Vacancy impurities in diamond for quantum networks

Quantum communications and quantum computing hold great promises respectively in terms of provably secure communications and drastic speedup in processing abilities for certain important tasks, thus allowing the computation of problems that are currently intractable even with the most powerful supercomputers. One of the most promising architectures to implement quantum communications and quantum computing is a quantum network, composed of several information processing nodes connected to one another. To process information, each node contains a set of qubits (quantum bits) that are the basic processing units, analogously to computer bits in today's computers. In order to design such nodes, it is necessary to identify a suitable physical system that can act as a qubit. Certain atomic impurities in diamond, called silicon-vacancy centres and consisting of a single silicon atom replacing two neighbouring carbon atoms of the diamond, are promising candidates. They can process information using their spin, which can be thought of as a small magnet tied to the atomic defect and that obeys the laws of quantum mechanics. Information can be encoded in the spin using photons, single light particles. Once encoded in the spin, the information needs to be processed and shared with other spins. The goal of this project is to leverage the properties of these impurities in order to progress towards the realization of a quantum network node. In particular, silicon-vacancy centres have the particularity of being particularly sensitive to vibrations in the diamond, so we aim to generate such vibrations controllably and use them to control the spin and interact with other spins to transfer information among them on a single chip. This is of particular interest because mechanical vibrations can interact with a wide variety of physical systems that could all play a role in a quantum network node, they would thus act as a mediator between vastly different quantum systems that would otherwise not be able to interact. Another important aspect of quantum information is that it can be very fragile and spins can only retain it reliably for a limited amount of time. Another goal is thus to manage to extend that storage time as much as possible. To do so, we take advantage of the presence of other spins in the diamond that belong to the nuclei of certain carbon atoms. These nuclear spins interact very little with their environment and are thus excellent memories into which information can be stored. We thus aim to study how to transfer information between the silicon-vacancy spin that processes information and nuclear spins that store it, and how information can be stored in multiple nuclear spins as long as possible.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The proposal COHESiV aims to establish a novel physical system with ideal properties for the realisation of quantum networks. Quantum information processing (QIP) promises to drastically increase computation abilities and thus unlock key computational problems with wide ranging benefits. An outstanding issue is however the choice of the fundamental building block to implement QIP. COHESiV's goal is to take advantage of the remarkable optical, mechanical and spin coherence properties of a novel quantum bit, the silicon-vacancy centre (SiV) in diamond and establish it as a central component of quantum networks for the implementation of QIP. To do so, COHESiV addresses two crucial operations on which standard quantum algorithms are based: entangling two quantum bits efficiently and storing quantum information in a long-lived quantum register. COHESiV’s objectives are to 1) Interface the spin of a single SiV with a well-defined vibrational mode (phonon) of a mechanical resonator 2) Demonstrate phonon-mediated entanglement between two SiV spins 3) Take advantage of long-lived neighbouring nuclear spins to store and retrieve a quantum state encoded in the SiV spin. Owing to the fact that the strong coupling regime between spin and phonon will be attainable with current mechanical resonators thanks to the remarkably large strain susceptibility of the SiV spin, COHESiV will also aim to open the new field of quantum acousto-dynamics, analogous to quantum electrodynamics, where phonons replace photons. Those objectives will be achieved by combining the expertise of the researcher on the physics of the SiV centre with the state-of-the-art design and fabrication of diamond nanostructures of the outgoing phase partner and the breakthroughs in QIP with a comparable physical system at the host institution.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз