Q-METAPP · Quantum Metrology in Applications
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2015-04-01 → 2017-03-31
- Финансиране от ЕС
- 158 122 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Квантовата метрология разработва методи за изключително прецизни измервания, например чрез атомна спектроскопия и магнетометрия. Това помага за създаването на по-точни сензори в мобилни телефони и лаптопи, като се намали влиянието на смущенията върху работата им.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Quantum Metrology in Applications
"Quantum technologies have potential of changing in not too distant future the way how our everyday-use devices―such as cars, mobiles or laptops―operate. Apart from more renowned and widely announced benefits of quantum communication or computing, a field that is within a closer reach of the current technologies is quantum sensing, more generally termed as quantum metrology. Its main motivation is to design and harness quantum features of light and matter, in order to be able to perform measurements with unprecedented precisions—limited only by the quantum structure of nature, while simultaneously benefiting from its unique properties such as the phenomenon of entanglement. Quantum-enhanced sensing devices have already been successfully demonstrated in many settings, however, the main obstacle that keeps restricting their performance and impedes their commercialisation is the impact of noise that, unfortunately, is much more efficient in destroying the necessary quantum properties. That is why, in recent years, a huge part of both theoretical and experimental research has been devoted to improving quantum sensing protocols by making them noise-robust and, hence, more implementation friendly. Within this action novel advanced tools of quantum information theory have been used, in order to achieve such goal in proposing a new generation of quantum metrology schemes. In particular, within the project, noise-robust protocols have been identified in atomic magnetometry, atomic spectroscopy and general settings involving fast control and error-correction operations, all of which have been shown to be capable of beating the standard limits imposed on precision by the noise, and fully benefit from the quantum properties of either light or matter. Moreover, within the theoretical part of the action, even more hope has been shed by demonstrating that the phenomenon of quantum-enhancement in sensing is typical in nature―systems prepared in a random manner at the quantum level should typically allow for the classical precision limits to be broken. Finally, by considering the so-called multi-stage architectures in which, e.g., atoms are utilised as sensors of external fields while being constantly measured with the light, it has been demonstrated by an explicit experiment that, thanks to the sophisticated data inference techniques of classical estimation theory, the noisy output signals can be effectively filtered in real-life implementations, in order to recover the underlying features and track in real time signals encoded ""deep inside"" a given device at the quantum level, despite all the noise appearing ""on the top"". "
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Quantum technologies will soon change the way we communicate, compute and measure phenomena. Due to the industry-oriented research in quantum metrology, methods have already been demonstrated that allow to perform measurements with unprecedented precisions—limited only by the quantum structure of nature. In recent years, new sophisticated techniques have been developed to more accurately describe such quantum metrological protocols and, in particular, account for the noise effects inevitably present in their implementations. The main objective of Q-METAPP is to propose a new generation of noise-robust sensing technologies by utilising these novel tools, and furthermore study their potential use in other branches of quantum information theory. The action will involve state-of-the-art theoretical research at the frontiers of quantum physics, statistics and probability theory, with its major part dedicated to designing quantum optical experiments. It will require strong collaboration between many theoreticians, also from other European institutions, and direct consulting with the experimental groups. The main goal will be achieved by proposing atomic magnetometry setups, in which the noise effects can be eliminated due to the careful engineering of the apparatus geometry, and by exploring the so-called Quantum Zeno Effect intrinsic to quantum systems. Moreover, multi-parameter estimation scenarios will be studied, in order to design quantum-enhanced protocols allowing to simultaneously sense many parameters in photonic experiments. In the second part, open problems in quantum thermodynamics, non-Markovian dynamics and communication theory will be approached with use of the metrological tools. Last subproject will focus on explaining the fundamental role of quantum correlations in metrology. The action, having a substantial impact on the development of quantum technologies, will greatly increase future mobility and career advancement possibilities of the applicant.
Оригинален текст от CORDIS (на английски).
Участници
- FUNDACIO INSTITUT DE CIENCIES FOTONIQUES · CastelldefelsКоординаторИспания
Връзки
Данни: CORDIS, © Европейски съюз
