Efficient quantum computing using coherent photon conversion
Nathan K. Langford,Sven Ramelow,Sven Ramelow,Robert Prevedel,Robert Prevedel,William J. Munro,William J. Munro,Gerard J. Milburn,Gerard J. Milburn,Anton Zeilinger,Anton Zeilinger +10 more
TL;DR: In this article, a deterministic process called coherent photon conversion (CPC) was proposed to generate and process complex, multiquanta states for photonic quantum information applications, which is not restricted to optical systems, and could also function in optomechanical, electromechanical and superconducting systems that exhibit even stronger intrinsic nonlinearities.
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Abstract: Single photons are excellent quantum information carriers, but current schemes for preparing, processing and measuring them are inefficient. This paper introduces a process termed coherent photon conversion that could provide a new way to generate and process complex multiquanta states for photonic quantum information applications. The new scheme is not restricted to optical systems, and could also function in optomechanical, electromechanical and superconducting systems that exhibit even stronger intrinsic nonlinearities. Single photons are excellent quantum information carriers: they were used in the earliest demonstrations of entanglement1 and in the production of the highest-quality entanglement reported so far2,3. However, current schemes for preparing, processing and measuring them are inefficient. For example, down-conversion provides heralded, but randomly timed, single photons4, and linear optics gates are inherently probabilistic5. Here we introduce a deterministic process—coherent photon conversion (CPC)—that provides a new way to generate and process complex, multiquanta states for photonic quantum information applications. The technique uses classically pumped nonlinearities to induce coherent oscillations between orthogonal states of multiple quantum excitations. One example of CPC, based on a pumped four-wave-mixing interaction, is shown to yield a single, versatile process that provides a full set of photonic quantum processing tools. This set satisfies the DiVincenzo criteria for a scalable quantum computing architecture6, including deterministic multiqubit entanglement gates (based on a novel form of photon–photon interaction), high-quality heralded single- and multiphoton states free from higher-order imperfections, and robust, high-efficiency detection. It can also be used to produce heralded multiphoton entanglement, create optically switchable quantum circuits and implement an improved form of down-conversion with reduced higher-order effects. Such tools are valuable building blocks for many quantum-enabled technologies. Finally, using photonic crystal fibres we experimentally demonstrate quantum correlations arising from a four-colour nonlinear process suitable for CPC and use these measurements to study the feasibility of reaching the deterministic regime with current technology4,7. Our scheme, which is based on interacting bosonic fields, is not restricted to optical systems but could also be implemented in optomechanical, electromechanical and superconducting systems8,9,10,11,12 with extremely strong intrinsic nonlinearities. Furthermore, exploiting higher-order nonlinearities with multiple pump fields yields a mechanism for multiparty mediation of the complex, coherent dynamics.
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Citations
Photonic quantum information processing: A concise review
TL;DR: The photonic quantum computing represents an exciting path to medium and large-scale processing as mentioned in this paper, and the development of integrated platforms, improved sources and detectors, novel noise-tolerant theoretical approaches, and more have solidified it as a leading contender for both quantum information processing and quantum networking.
Superlattices and microstructures
ScienceDirect
- 01 Jan 1985
TL;DR: An abstract should be a single paragraph containing 100-150 words that briefly states the purpose of the research, the principal results and major conclusions and must be able to stand alone.
444
Photonic quantum information processing: a concise review
TL;DR: This concise review provides a flyover of some key aspects of the field, with a focus on experiment, and promises to out aside its reputation for requiring excessive resource overheads due to inefficient two-qubit gates.
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•Journal Article
High-speed linear optics quantum computing via active feed-forward
Robert Prevedel,Philip Walther,F. Tiefenbacher,Pascal Boehi,Rainer Kaltenbaek,Thomas Jennewein,Anton Zeilinger +6 more
TL;DR: In this article, a concatenated scheme of measurement and active feed-forward in a one-way quantum computing experiment is presented, and the authors demonstrate that, for a perfect cluster state and no photon loss, their quantum computation scheme would operate with good fidelity and that their feedforward components function with very high speed and low error for detected photons.
Three-photon energy-time entanglement
TL;DR: In this paper, the energy and emission times of three photons were entangled to create generalized Einstein-Podolsky-Rosen correlations, and the correlations were used to generate a generalized Eq.
216
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