Moran Chen
University of Virginia
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Publication
Featured researches published by Moran Chen.
Physical Review Letters | 2014
Moran Chen; Nicolas C. Menicucci; Olivier Pfister
We report the experimental realization and characterization of one 60-mode copy and of two 30-mode copies of a dual-rail quantum-wire cluster state in the quantum optical frequency comb of a bimodally pumped optical parametric oscillator. This is the largest entangled system ever created whose subsystems are all available simultaneously. The entanglement proceeds from the coherent concatenation of a multitude of Einstein, Podolsky, and Rosen pairs by a single beam splitter, a procedure which is also a building block for the realization of hypercubic-lattice cluster states for universal quantum computing.
Physical Review A | 2014
Pei Wang; Moran Chen; Nicolas C. Menicucci; Olivier Pfister
Cluster states with higher-dimensional lattices that cannot be physically embedded in three-dimensional space have important theoretical interest in quantum computation and quantum simulation of topologically ordered condensed-matter systems. We present a simple, scalable, top-down method of entangling the quantum optical frequency comb into hypercubic-lattice continuous-variable cluster states of a size of about 104 quantum field modes, using existing technology. A hypercubic lattice of dimension D (linear, square, cubic, hypercubic, etc.) requires but D optical parametric oscillators with bichromatic pumps whose frequency splittings alone determine the lattice dimensionality and the number of copies of the state.
Physical Review A | 2016
Rafael N. Alexander; Pei Wang; Niranjan Sridhar; Moran Chen; Olivier Pfister; Nicolas C. Menicucci
One-way quantum computing is experimentally appealing because it requires only local measurements on an entangled resource called a cluster state. Record-size, but nonuniversal, continuous-variable cluster states were recently demonstrated separately in the time and frequency domains. We propose to combine these approaches into a scalable architecture in which a single optical parametric oscillator and simple interferometer entangle up to (3×103 frequencies) × (unlimited number of temporal modes) into a computationally universal continuous-variable cluster state. We introduce a generalized measurement protocol to enable improved computational performance on this entanglement resource.
Research in Optical Sciences (2014), paper QW3B.3 | 2014
Moran Chen; Nicolas C. Menicucci; Olivier Pfister
A 60-mode quantum-wire continuous-variable cluster state was experimentally generated in the quantum optical frequency comb of a single optical parametric oscillator. This is the largest entangled system ever created whose subsystems are all available simultaneously.
conference on lasers and electro optics | 2014
Pei Wang; Moran Chen; Olivier Pfister; Nicolas C. Menicucci
conference on lasers and electro optics | 2015
Pei Wang; Wenjiang Fan; Moran Chen; Olivier Pfister; Nicolas C. Menicucci
Bulletin of the American Physical Society | 2015
Olivier Pfister; Pei Wang; Rafael N. Alexander; Moran Chen; Niranjan Sridhar; Nicolas C. Menicucci
Bulletin of the American Physical Society | 2014
Olivier Pfister; Moran Chen; Pei Wang; Wenjiang Fan; Nicolas C. Menicucci
Bulletin of the American Physical Society | 2013
Olivier Pfister; Pei Wang; Moran Chen; Matthew Pysher; Yoshichika Miwa; Russell Bloomer; Reihaneh Shahrokhshahi; Nicolas C. Menicucci
Bulletin of the American Physical Society | 2013
Moran Chen; Pei Wang; Nicolas C. Menicucci; Olivier Pfister