From Linear Optical Quantum Computing to Heisenberg-Limited Interferometry
Hwang Lee, Pieter Kok, Colin P. Williams, Jonathan P. Dowling
Abstract
Hwang Lee, Pieter Kok, Colin P. Williams, Jonathan P. Dowling
Abstract
Abstract. The working principles of linear optical quantum computing are based on photodetection, namely, projective measurements. The use of photodetection can provide efficient nonlinear interactions between photons at the single-photon level, which is technically problematic otherwise. We report an application of such a technique to prepare quantum correlations as an important resource for Heisenberglimited optical interferometry, where the sensitivity of phase measurements can be improved beyond the usual shot-noise limit. Furthermore, using such nonlinearities, optical quantum nondemolition measurements can now be carried out at the singlephoton level. § To whom correspondence should be addressed (jonathan.p.dowling@jpl.nasa.gov) From Linear Optical Quantum Computing... 2 1. Effective nonlinearities by projective measurements Looking back, scalable quantum computation with linear optics was considered to be impossible due to the lack of efficient two-qubit logic gates, despite the ease of implementation of one-qubit gates. Two-qubit gates necessarily need a nonlinear interaction between the two photons, and the efficiency of this nonlinear interaction is
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Abstract. The working principles of linear optical quantum computing are based on photodetection, namely, projective measurements. The use of photodetection can provide efficient nonlinear interactions between photons at the single-photon level, which is technically problematic otherwise. We report an application of such a technique to prepare quantum correlations as an important resource for Heisenberglimited optical interferometry, where the sensitivity of phase measurements can be improved beyond the usual shot-noise limit. Furthermore, using such nonlinearities, optical quantum nondemolition measurements can now be carried out at the singlephoton level. § To whom correspondence should be addressed (jonathan.p.dowling@jpl.nasa.gov) From Linear Optical Quantum Computing... 2 1. Effective nonlinearities by projective measurements Looking back, scalable quantum computation with linear optics was considered to be impossible due to the lack of efficient two-qubit logic gates, despite the ease of implementation of one-qubit gates. Two-qubit gates necessarily need a nonlinear interaction between the two photons, and the efficiency of this nonlinear interaction is
Key concepts: Photodetection, Interferometry, Quantum limit, Heisenberg limit, Photon, Physics, Quantum, Quantum imaging