articleTop 10% cited
Spin squeezing and reduced quantum noise in spectroscopy
Physical Review A · 1992 · Vol. 46(11) · pp. R6797–R6800
D. J. Wineland✉(National Institute of Standards and Technology)J. J. Bollinger(National Institute of Standards and Technology)Wayne M. Itano(National Institute of Standards and Technology)F. L. Moore(National Institute of Standards and Technology)D. J. Heinzen(National Institute of Standards and Technology)
Abstract
We investigate the quantum-mechanical noise in spectroscopic experiments on ensembles of N two-level (or spin-1/2) systems where transitions are detected by measuring changes in state population. By preparing correlated states, here called squeezed spin states, we can increase the signal-to-noise ratio in spectroscopy (by approximately ${\mathit{N}}^{1/2}$ in certain cases) over that found in experiments using uncorrelated states. Possible experimental demonstrations of this enhancement are discussed.
Quantum optics and atomic interactionsQuantum Information and CryptographySpectroscopy and Quantum Chemical StudiesPhysicsNoise (video)Spin (aerodynamics)UncorrelatedSpectroscopySpin statesQuantumPopulationQuantum mechanicsCondensed matter physics
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References
SU(2) and SU(1,1) interferometers
Physical review. A, General physics · 1986 · 1,305 citations
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