OPHOCS · On-chip Photonic Cluster State Generation
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2017-03-01 → 2019-02-28
- Финансиране от ЕС
- 200 195 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
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Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
On-chip Photonic Cluster State Generation
• What is the problem/issue being addressed? Long distance quantum communication, i.e. the transfer of information by means of quantum mechanics, is presently limited to a few hundred kilometers because quantum states cannot be copied and amplified. That is a huge dilemma as quantum communication is the only known method that can in principle guarantee fundamentally secure communication—it would therefore be important to extend present typical quantum communication distances of several ten kilometers to several thousand kilometers. This requires a quantum repeater, the quantum-analogue to a classical repeater within a classical communication channel. A few years ago, a new method to realize such a quantum repeater was theoretically introduced. It is based on the application of photonic cluster states to establish a long-distance communication channel. The generation of such cluster states is the objective of this project. • Why is it important for society? Secure communication is at the heart of our modern communication-based society. We as members of the European society communicate permanently with each other: through emails, voice calls, and social media; we communicate with our banks, our employers, and our governments. These communicate with each other. It is therefore inevitable to guarantee that private communication stays private and cannot be eve-dropped by any unknown third party. Quantum communication is presently the only known method that can in principle guarantee fundamentally secure communication—we therefore need to develop the required quantum technologies that will enable to apply such secure communication schemes in our everyday life. • What are the overall objectives? The overall objective of this project is the efficient generation of photonic cluster states based on self-assembled quantum dots in nanophotonic systems. A self-assembled quantum dot is a point-like structure with dimensions of about 10 nanometers in all dimensions. Due to its small dimensions and combination of materials, electronic energy levels are discretized—and the quantum dot behaves like an atom in the solid state. The quantum dot, equivalent to an atom, can be used as a very special “quantum” light source. This quantum light source emits only one light particle, i.e. a photonic qubit, at a time. A qubit (from quantum-bit) is the quantum-analogue of the classical bits that are the basis of our computers, cell phones, basically any digital device. Is the quantum dot furthermore charged with a single electron, the two spin states of this electron build a stationary qubit which can be used as additional quantum-mechanical resource. In such a charged quantum dot, the emission of a photonic qubit is coherently coupled to the spin state of the electronic qubit—the electron and photon can be entangled. Because the electron is quasi-permanently present in the quantum dot, the emission of a photon can, if carried out within the so-called coherence time, be directly coupled to the emission of the previous photon. If done in the required way by applying particular quantum gates, i.e. a coherent operation on the electron, the entanglement can be extended from one electron and one photon to one electron and two photons, and so on, and finally to one electron and n photons. By performing a specific, final quantum gate on the electron qubit, the electron is decoupled from the photons, and the n photons are left in an entangled state. This entangled state is the so-called cluster state. Such a cluster state can then be used for a variety of important quantum technologic applications, for example for the aforementioned quantum secure long-distance communication.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The MSCA Individual fellowship project OPHOCS – On-chip Photonic Cluster State Generation focuses on the realization and investigation of large cluster states of entangled single photons with applications in quantum information processing. The project will progress recent developments of quantum dot spin qubits as the entanglement resource, which may be scaled up to a large cluster state by employing state-of-the-art nanophotonic devices to efficiently boost the photon generation efficiency. A highly entangled many-photon cluster state is an eagerly sought after fundamental resource enabling measurement-based quantum-information processing. Here computation algorithms are carried out only by single-qubit measurements combined with classical feed-forward operations on the large-scale cluster state. This feature makes such a one-way quantum computer highly desirable as it critically reduces the requirements for quantum computation. Recent, first proof-of-principle implementations elucidate its potential but are limited in their scalability.The proposed research will facilitate self-assembled semiconductor quantum dots as a scalable photonic resource by exploiting their unique ability for the generation of highest purity indistinguishable photons with unprecedented high efficiencies. This resource will be directly integrated into nanophotonic waveguide devices, and the inherently strong light-matter interaction exploited to demonstrate efficient spin-photon interfaces for high rate, high fidelity cluster state generation. With this architecture we will establish a solid-state device for quantum information science, with the immediate target of generating, for the first time, on-chip photonic cluster states with n>10.
Оригинален текст от CORDIS (на английски).
Участници
- KOBENHAVNS UNIVERSITET · KOBENHAVNКоординаторДания
Връзки
Данни: CORDIS, © Европейски съюз
