Universal quantum computation with temporal-mode bilayer square lattices
arXiv:1711.08782 · doi:10.1103/PhysRevA.97.032302
Abstract
We propose an experimental design for universal continuous-variable quantum computation that incorporates recent innovations in linear-optics-based continuous-variable cluster state generation and cubic-phase gate teleportation. The first ingredient is a protocol for generating the bilayer-square-lattice cluster state (a universal resource state) with temporal modes of light. With this state, measurement-based implementation of Gaussian unitary gates requires only homodyne detection. Second, we describe a measurement device that implements an adaptive cubic-phase gate, up to a random phase-space displacement. It requires a two-step sequence of homodyne measurements and consumes a (non-Gaussian) cubic-phase state.
(v2) 14 pages, 5 figures, consistent with published version; (v1) 13 pages, 5 figures
References in corpus (13)
- Universal Quantum Computation with Continuous-Variable Cluster States
- One-Way Quantum Computing in the Optical Frequency Comb
- Generation of one-million-mode continuous-variable cluster state by unlimited time-domain multiplexing
- Graphical calculus for Gaussian pure states
- Generating superposition of up-to three photons for continuous variable quantum information processing
- Demonstration of a quantum nondemolition sum gate
- Ultracompact Generation of Continuous-Variable Cluster States
- Demonstration of deterministic and high fidelity squeezing of quantum information
- Repeat-until-success cubic phase gate for universal continuous-variable quantum computation
- The Optical Frequency Comb as a One-Way Quantum Computer
- Experimental realization of a dynamic squeezing gate
- Quantum Nondemolition Gate Operations and Measurements in Real Time on Fluctuating Signals
- Demonstration of reversible phase-insensitive optical amplifier
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