Quantum Metrology in the Era of Quantum Information
Invited
Abstract
A comprehensive overview of the most recent advances in theoretical methods of quantum metrology will be presented, that in particular benefit from the quantum information related concepts such as quantum error-correction or matrix product states formalism. The theory developed allows to determine whether the Heisenberg scaling of precision is possible for a quantum sensor subject to a general Markovian noise. The theory takes into account all the possible quantum strategies, including entangling the sensor with ancillary systems, adaptive strategies such as e.g. quantum error correction protocols. Moreover, effective algorithms, based on the matrix product states/matrix product operator formalism, are developed that allow to identify the optimal metrological protocols in presence of noise (also correlated noise) in the limit of large number of probes, inaccessible by the state-of-the-art methods. These results are highly relevant for modern developments of quantum enhanced sensing protocols, including NV-center magnetometry, squeezed states enhanced optical and atomic interferometry or stabilization protocols for atomic clocks.
References:
[1] R. Demkowicz-Dobrzanski, J. Czajkowski, P. Sekatski, Adaptive quantum metrology under general Markovian noise, Phys. Rev. X 7, 041009 (2017)
[2] K. Chabuda, J. Dziarmaga, T. Osborne, R. Demkowicz-Dobrzanski, Tensor Networks for Quantum Metrology, arXiv:1906.02761 (2019)
References:
[1] R. Demkowicz-Dobrzanski, J. Czajkowski, P. Sekatski, Adaptive quantum metrology under general Markovian noise, Phys. Rev. X 7, 041009 (2017)
[2] K. Chabuda, J. Dziarmaga, T. Osborne, R. Demkowicz-Dobrzanski, Tensor Networks for Quantum Metrology, arXiv:1906.02761 (2019)
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Presenters
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Rafal Demkowicz-Dobrzanski
Faculty of Physics, University of Warsaw
Authors
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Rafal Demkowicz-Dobrzanski
Faculty of Physics, University of Warsaw