Relativistic Quantum Metrology: Exploiting relativity to improve quantum measurement technologies

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作者
Mehdi Ahmadi
David Edward Bruschi
Carlos Sabín
Gerardo Adesso
Ivette Fuentes
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[1] School of Mathematical Sciences,
[2] University of Nottingham,undefined
[3] University Park,undefined
[4] School of Electronic and Electrical Engineering,undefined
[5] University of Leeds,undefined
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Scientific Reports | / 4卷
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摘要
We present a framework for relativistic quantum metrology that is useful for both Earth-based and space-based technologies. Quantum metrology has been so far successfully applied to design precision instruments such as clocks and sensors which outperform classical devices by exploiting quantum properties. There are advanced plans to implement these and other quantum technologies in space, for instance Space-QUEST and Space Optical Clock projects intend to implement quantum communications and quantum clocks at regimes where relativity starts to kick in. However, typical setups do not take into account the effects of relativity on quantum properties. To include and exploit these effects, we introduce techniques for the application of metrology to quantum field theory. Quantum field theory properly incorporates quantum theory and relativity, in particular, at regimes where space-based experiments take place. This framework allows for high precision estimation of parameters that appear in quantum field theory including proper times and accelerations. Indeed, the techniques can be applied to develop a novel generation of relativistic quantum technologies for gravimeters, clocks and sensors. As an example, we present a high precision device which in principle improves the state-of-the-art in quantum accelerometers by exploiting relativistic effects.
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[1]  
Ma X-S(2012)Quantum Teleportation over 143 Kilometers Using Active Feed-Forward Nature (London) 489 269-273
[2]  
Villoresi P(2008)Experimental verification of the feasibility of a quantum channel between space and Earth New J. Phys. 10 033038-393
[3]  
Bonato C(2009)Feasibility of satellite quantum key distribution New J. Phys. 11 045017-554
[4]  
Tomaello A(2013)Direct and full-scale experimental verifications towards groundsatellite quantum key distribution Nature Photon. 7 387-687
[5]  
Deppo VD(2003)Relativity in the Global Positioning System Living Rev. Relativity 6 1-561
[6]  
Naletto G(2012)Fundamental quantum optics experiments conceivable with satellites – reaching relativistic distances and velocities Class. Quantum Grav. 29 224011-137
[7]  
Villoresi P(2013)Quantum optics experiments using the International Space Station: a proposal New J. Phys. 15 043008-27
[8]  
Wang J-Y(2010)Optimal quantum estimation of the Unruh-Hawking effect Phys. Rev. Lett. 105 151301-379
[9]  
Ashby N(2013)Parameter estimation using NOON states over a relativistic quantum channel Phys. Rev. A 88 052112-229
[10]  
Rideout D(2006)Entanglement in an expanding spacetime Phys. Lett. A 359 550-3443