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Near-infrared Hong-Ou-Mandel interference on a silicon quantum photonic chipXinan Xu, Zhenda Xie, Jiangjun Zheng, Junlin Liang, Tian Zhong, Mingbin Yu, Serdar Kocaman, Guo-Qiang Lo, Dim-Lee Kwong, Dirk R. Englund, Franco N. C. Wong, and Chee Wei Wong »View Author Affiliations
Xinan Xu,1
Zhenda Xie,1
Jiangjun Zheng,1
Junlin Liang,1
Tian Zhong,2
Mingbin Yu,3
Serdar Kocaman,1
Guo-Qiang Lo,3
Dim-Lee Kwong,3
Dirk R. Englund,4
Franco N. C. Wong,2
and Chee Wei Wong1,*
1Optical Nanostructures Laboratory, Center for Integrated Science and Engineering, Solid-State Science and Engineering, and Mechanical Engineering, Columbia University, New York, New York 10027, USA 2Research Laboratory of Electronics, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, USA 3The Institute of Microelectronics, 11 Science Park Road, Singapore 117685, Singapore 4Quantum Photonics Laboratory, Columbia University, New York, New York 10027, USA *Corresponding author: cww2104@columbia.edu |
Optics Express, Vol. 21, Issue 4, pp. 5014-5024 (2013)
http://dx.doi.org/10.1364/OE.21.005014
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Abstract
Near-infrared Hong-Ou-Mandel quantum interference is observed in silicon nanophotonic directional couplers with raw visibilities on-chip at 90.5%. Spectrally-bright 1557-nm two-photon states are generated in a periodically-poled KTiOPO4 waveguide chip, serving as the entangled photon source and pumped with a self-injection locked laser, for the photon statistical measurements. Efficient four-port coupling in the communications C-band and in the high-index-contrast silicon photonics platform is demonstrated, with matching theoretical predictions of the quantum interference visibility. Constituents for the residual quantum visibility imperfection are examined, supported with theoretical analysis of the sequentially-triggered multipair biphoton, towards scalable high-bitrate quantum information processing and communications. The on-chip HOM interference is useful towards scalable high-bitrate quantum information processing and communications.
© 2013 OSA
OCIS Codes
(190.4410) Nonlinear optics : Nonlinear optics, parametric processes
(230.7370) Optical devices : Waveguides
(270.5290) Quantum optics : Photon statistics
(270.5585) Quantum optics : Quantum information and processing
ToC Category:
Quantum Optics
History
Original Manuscript: December 3, 2012
Revised Manuscript: January 5, 2013
Manuscript Accepted: January 7, 2013
Published: February 21, 2013
Citation
Xinan Xu, Zhenda Xie, Jiangjun Zheng, Junlin Liang, Tian Zhong, Mingbin Yu, Serdar Kocaman, Guo-Qiang Lo, Dim-Lee Kwong, Dirk R. Englund, Franco N. C. Wong, and Chee Wei Wong, "Near-infrared Hong-Ou-Mandel interference on a silicon quantum photonic chip," Opt. Express 21, 5014-5024 (2013)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-21-4-5014
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- L. Bartůšková, M. Dusek, A. Cernoch, J. Soubusta, and J. Fiurásek, “Fiber-optics implementation of an asymmetric phase-covariant quantum cloner,” Phys. Rev. Lett.99(12), 120505 (2007). [CrossRef] [PubMed]
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