Quantum metrology allows for a tremendous boost in the accuracy of measurement of diverse physical parameters. The estimation of a rotation constitutes a remarkable example of this quantum-enhanced precision. The recently introduced Kings of Quantumness are especially germane for this task when the rotation axis is unknown, as they have a sensitivity independent of that axis and they achieve a Heisenberg-limit scaling. Here, we report the experimental realization of these states by generating up to 21-dimensional orbital angular momentum states of single photons, and confirm their high metrological abilities. (C) 2017 Optical Society of America
For the last 20 years, the question of what are the fundamental capabilities of quantum precision me...
We scrutinize the role of quantum entanglement in quantum metrology and discuss recent advances in n...
The measurement of a quantum state poses a unique challenge for experimentalists. Recently, the tec...
Adopting quantum resources for parameter estimation discloses the possibility to realize quantum sen...
We report an experiment estimating the three parameters of a general rotation. The scheme uses quant...
Conventional classical sensors are approaching their maximum sensitivity levels in many areas. Yet t...
Quantum metrology bears a great promise in enhancing measurement precision, but is unlikely to becom...
Quantum metrology uses quantum features such as entanglement and squeezing to improve the sensitivit...
Adopting quantum resources for parameter estimation discloses the possibility to realize quantum sen...
Abstract. Quantum metrology uses quantum features such as entanglement and squeezing to improve the ...
Abstract. We summarise important recent advances in quantum metrology, in connection to experiments ...
Quantum number-path entanglement is a resource for supersensitive quantum metrology and in particula...
Quantum number-path entanglement is a resource for supersensitive quantum metrology and in particula...
We address the question of whether the super-Heisenberg scaling for quantum estimation is indeed rea...
Quantum estimation of a two-phases spin rotation We study the estimation of an infinitesimal rotatio...
For the last 20 years, the question of what are the fundamental capabilities of quantum precision me...
We scrutinize the role of quantum entanglement in quantum metrology and discuss recent advances in n...
The measurement of a quantum state poses a unique challenge for experimentalists. Recently, the tec...
Adopting quantum resources for parameter estimation discloses the possibility to realize quantum sen...
We report an experiment estimating the three parameters of a general rotation. The scheme uses quant...
Conventional classical sensors are approaching their maximum sensitivity levels in many areas. Yet t...
Quantum metrology bears a great promise in enhancing measurement precision, but is unlikely to becom...
Quantum metrology uses quantum features such as entanglement and squeezing to improve the sensitivit...
Adopting quantum resources for parameter estimation discloses the possibility to realize quantum sen...
Abstract. Quantum metrology uses quantum features such as entanglement and squeezing to improve the ...
Abstract. We summarise important recent advances in quantum metrology, in connection to experiments ...
Quantum number-path entanglement is a resource for supersensitive quantum metrology and in particula...
Quantum number-path entanglement is a resource for supersensitive quantum metrology and in particula...
We address the question of whether the super-Heisenberg scaling for quantum estimation is indeed rea...
Quantum estimation of a two-phases spin rotation We study the estimation of an infinitesimal rotatio...
For the last 20 years, the question of what are the fundamental capabilities of quantum precision me...
We scrutinize the role of quantum entanglement in quantum metrology and discuss recent advances in n...
The measurement of a quantum state poses a unique challenge for experimentalists. Recently, the tec...