We establish the ultimate quantum limits to the amplification of an unknown coherent state, both in the deterministic and probabilistic case, investigating the realistic scenario where the expected photon number is finite. In addition, we provide the benchmark that experimental realizations have to surpass in order to beat all classical amplification strategies and to demonstrate genuine quantum amplification. Our result guarantees that a successful demonstration is in principle possible for every finite value of the expected photon number. © 2013 American Physical Society.Link_to_subscribed_fulltex
Quantum target detection aims to utilise quantum technologies to achieve performances in target dete...
One of the weaknesses of quantum optical state postselection schemes is the low success probability....
We present an experimental enhancement of signal-to-noise ratio for arbitrary coherent states using ...
Quantum-limited amplifiers increase the amplitude of quantum signals at the price of introducing add...
I show that an optical amplifier, when combined with photon subtraction, can be used for quantum sta...
It is a fundamental principle of quantum theory that an unknown state cannot be copied or, as a cons...
It is a fundamental principle of quantum theory that an unknown state cannot be copied or, as a cons...
© 2014 American Physical Society. Quantum technology promises revolutionary advantages in informatio...
We present an experimental demonstration of a practical nondeterministic quantum optical amplificati...
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Quantum technology promises revolutionary advantages in information processing and transmission comp...
Phase-insensitive optical amplifiers uniformly amplify each quadrature of an input field and are of ...
Since their first conception, quantum technologies are now starting to become a reality promising t...
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Quantum target detection aims to utilise quantum technologies to achieve performances in target dete...
One of the weaknesses of quantum optical state postselection schemes is the low success probability....
We present an experimental enhancement of signal-to-noise ratio for arbitrary coherent states using ...
Quantum-limited amplifiers increase the amplitude of quantum signals at the price of introducing add...
I show that an optical amplifier, when combined with photon subtraction, can be used for quantum sta...
It is a fundamental principle of quantum theory that an unknown state cannot be copied or, as a cons...
It is a fundamental principle of quantum theory that an unknown state cannot be copied or, as a cons...
© 2014 American Physical Society. Quantum technology promises revolutionary advantages in informatio...
We present an experimental demonstration of a practical nondeterministic quantum optical amplificati...
Optical signals are subject to a distance-dependent loss as they propagate through trans-mission med...
Quantum technology promises revolutionary advantages in information processing and transmission comp...
Phase-insensitive optical amplifiers uniformly amplify each quadrature of an input field and are of ...
Since their first conception, quantum technologies are now starting to become a reality promising t...
We investigate several recently published benchmark criteria for storage or transmission of continuo...
Abstract Quantum illumination theoretically promises up to a 6 dB error‐exponent advantage in target...
Quantum target detection aims to utilise quantum technologies to achieve performances in target dete...
One of the weaknesses of quantum optical state postselection schemes is the low success probability....
We present an experimental enhancement of signal-to-noise ratio for arbitrary coherent states using ...