H2020Индивидуална стипендия2016–2018

GeNoSOS · Generation of Non-classical States in Optomechanical Systems

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

Период
2016-06-01 → 2018-05-31
Финансиране от ЕС
175 420 €
Участници
1
Схема
MSCA-IF-EF-ST

Линиите свързват координатора с партньорите.

Накратко на български

Оптомеханичните кристали, представляващи силициеви нанолъчи, се използват за създаване на квантови състояния чрез взаимодействие между лазерна светлина и механични вибрации. Това помага за разработването на по-чувствителни измервания, по-мощни компютри и по-добро разбиране на връзката между квантовата механика и теорията на относителността.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Generation of Non-classical States in Optomechanical Systems

Quantum mechanics underpins all modern technology, such as lasers and microelectronics. Understanding its principles enabled such technologies, and further advances will usher in new technologies such as quantum computers. Harnessing quantum mechanical phenomena allows new capabilities, such as more sensitive measurements, more computational power or more data capacity. In addition it furthers our understanding of the universe. For example, the recent direct observation of gravitational waves from merging black holes followed decades of careful analysis of the limits imposed by quantum mechanics on such detection. Future technologies will employ manifestly quantum mechanical entities, such as single atoms or quantized magnetic fluxes in superconductors. Another such entity is the motion of a mechanical oscillator, and only recently has it been possible to probe the quantum mechanical properties of carefully designed oscillators, in a field known as cavity optomechanics. Mechanical objects offer many advantages. They are often much less susceptible to environmental noises and can also be used to mediate between different systems, such as superconducting qubit and an optical data link. Moreover, the massiveness of mechanical oscillators provides a connection between quantum mechanics and the theory of relativity -- whose unification still baffles physicists. We focus on a promising type of a mechanical oscillator, known as an optomechanical crystal. It is a silicon nanobeam (hundreds of nanometer in width and thickness, and tens of micrometers in length) that confines a localized mechanical oscillation as well as an optical resonance. The optics and the mechanics are coupled to each other by radiation pressure and electrostriction. Thus by injecting laser light into the devices, which can be done in an efficient manner, it is possible to probe and manipulate mechanical motion. Many intriguing quantum-mechanical phenomena in mechanical systems were observed for the first time in optomechanical crystals. Using light it is possible to remove energy, or cool the mechanical oscillator down to its quantum ground state of motion. Quantum motion also exhibits intrinsic 'zero-point motion' -- even in the absence of energy -- that has also been observed. The quantization of motional energy of a mechanical system and even quantum entanglement between two such systems, has been demonstrated with optomechanical crystals. These experiments require operating at very low temperatures, usually of a few milli-Kelvin, with the oscillator situated in vacuum. While these experiments constitute significant advance in understanding and manipulating mechanical oscillators in the quantum regime, they are encumbered by a severe limitation of technical heating of the system due to partial absorption of the interrogating light. Coupled with very low thermal conductivity, this limits many experiments to extremely low signals or short light pulses and long integration times, and prohibits experiments that require strong, continuous probing, such as avoiding measurement backaction or generating continuous non-classical ('squeezed') states of motion. Building on expertise in optomechanics and cryogenics in the Laboratory of Photonics and Quantum Measurements at EPFL, we have set out to develop a platform that will provide the next step in continuous quantum measurements with mechanical oscillators in the optical domain. Our approach is based on a cryogenic system where ambient cold helium-3 gas serves as a buffer to facilitate the thermalization of the system and greatly reduce technical heating. Although operating at temperatures of a few Kelvin, the ability to use strong optical fields enables the use of optomechanical techniques to cool the oscillator to the ground state, and perform additional measurements. The overall objectives of this project were to develop the above system and demonstrate the ability to cool the oscillator close to its ground state, and demonstrate for the first time quantum measurements that have so far remained elusive.

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

Цел на проекта

The emerging field of quantum cavity optomechanics (QCOM) aims to probe and control mechanical oscillators in the quantum regime, offering exciting and innovative new directions in metrology, quantum information science and fundamental questions in physics.Having recently entered the quantum regime by cooling mechanical oscillators to their ground state, we aim in this proposal to take QCOM a major step forward. We will generate a manifestly non-classical state – a single phonon Fock state – in the mechanical oscillator.This achievement is expected to usher a new era in QCOM, where mechanical quantum states are manipulated. Goals such as mechanical qubits stored in oscillators, remote entanglement of mechanical oscillators, and tests of fundamental quantum mechanics will now be within reach.The host scientist, Prof. Tobias Kippenberg, is a world leader in the field, having first demonstrated optomechanical coupling in microresonators in his postdoctoral work at Caltech in 2005, which led to an explosion of activities worldwide. Prof. Kippenberg was the first to demonstrate backaction cooling and resolved sideband cooling, which since serve as the basis for all optomechanical experiments. He also produced many milestone results in the field, which are now highly cited papers.The applicant, Itay Shomroni, has a proven track record in cavity QED and atomic physics, having done his PhD at the Weizmann Institute of Science, Israel, and is first author on Science, Nature Physics and PRL papers. His move into this emerging field at the interface of quantum optics and atomic and condensed matter physics, is expected to greatly benefit both himself and the host group. With the new possibilities created by the successful fulfillment of this proposal and by the expertise gained through his postdoctoral work in a leading group, he is expected to be in an excellent position to launch is own career as an independent researcher and contribute to European scientific excellence.

Оригинален текст от CORDIS (на английски).

Участници

  • ECOLE POLYTECHNIQUE FEDERALE DE LAUSANNE · LausanneКоординаторШвейцария

Връзки

Данни: CORDIS, © Европейски съюз