DocumentCode :
1605564
Title :
Integrated quantum photonics
Author :
Aungskunsiri, K. ; Bonneau, Damien ; Carolan, Jacques ; Engin, E. ; Fry, D. ; Hadden, J. ; Kalasuwan, P. ; Kennard, J. ; Knauer, S. ; Lawson, T. ; Marseglia, L. ; Martin-Lopez, E. ; Meinecke, Jena ; Mendoza, G. ; Peruzzo, Alberto ; Poulios, K. ; Russell,
Author_Institution :
Dept. of Electr. & Electron. Eng., Univ. of Bristol, Bristol, UK
fYear :
2012
Firstpage :
1
Lastpage :
1
Abstract :
Quantum information science aims to harness uniquely quantum mechanical properties to enhance measurement and information technologies, and to explore fundamental aspects of quantum physics. Of the various approaches to quantum computing [1], photons are particularly appealing for their low-noise properties and ease of manipulation at the single qubit level [2,3]. Encoding quantum information in photons is also an appealing approach to quantum communication, metrology (eg. [4]), measurement (eg. [5]) and other quantum technologies [6]. However, the implementation of optical quantum circuits with bulk optics has reached practical limits. We have developed an integrated waveguide approach to photonic quantum circuits for high performance, miniaturization and scalability [7]. Here we report high-fidelity silica-on-silicon integrated optical realizations of key quantum photonic circuits, including two-photon quantum interference and a controlled-NOT logic gate [8]. We have demonstrated controlled manipulation of up to four photons on-chip, including highfidelity single qubit operations, using a lithographically patterned resistive phase shifter [9]. We have used this architecture to implement a small-scale compiled version of Shor´s quantum factoring algorithm [10], demonstrated heralded generation of tunable four photon entangled states from a six photon input [11], a reconfigurable two-qubit circuit [12], and combined waveguide photonic circuits with superconducting single photon detectors [13]. We describe complex quantum interference behavior in multi-mode interference devices with up to eight inputs and outputs [14], and quantum walks of correlated particles in arrays of coupled waveguides [15]. Finally, we give an overview of our recent work on fundamental aspects of quantum measurement [16,17] and diamond [18,19] and nonlinear [20,21] photon sources.
Keywords :
diamond; integrated optics; nonlinear optics; optical arrays; optical logic; optical phase shifters; optical tuning; optical waveguides; photolithography; quantum entanglement; quantum gates; quantum interference phenomena; quantum optics; silicon; silicon compounds; superconducting photodetectors; two-photon processes; C; Shor quantum factoring algorithm; SiO2-Si; combined waveguide photonic circuits; controlled-NOT logic gate; correlated particles; coupled waveguides; diamond; heralded generation; high-fidelity silica-on-silicon integrated optics; high-fidelity single qubit operations; integrated quantum photonics; integrated waveguide; lithographically patterned resistive phase shifter; miniaturization; multimode interference devices; nonlinear photon sources; photon input; photon on-chip; photon outputs; photonic quantum circuits; quantum measurement; quantum photonic circuits; quantum walks; reconfigurable two-qubit circuit; scalability; superconducting single photon detectors; tunable four photon entangled states; two-photon quantum interference;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nanotechnology (IEEE-NANO), 2012 12th IEEE Conference on
Conference_Location :
Birmingham
ISSN :
1944-9399
Print_ISBN :
978-1-4673-2198-3
Type :
conf
DOI :
10.1109/NANO.2012.6322239
Filename :
6322239
Link To Document :
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