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On-chip multiphoton Greenberger-Horne Zeilinger state based on integrated frequency combs

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摘要 One of the most important multipartite entangled states,Greenberger-Horne-Zeilinger state(GHZ),serves as a fundamental resource for quantum foundat ion test,quantum communication and quantum computation.To increase the number of entangled particles,significant experimental efforts should been invested due to the complexity of optical setup and the difficulty in maintaining the coherence condition for high-fidelity GHZ state.Here,we propose an ultra-integrated scalable on-chip GHZ state generation scheme based on frequency combs.By designing several microrings pumped by different lasers,multiple partially overlapped quantum frequency combs are generated to supply as the basis for on-chip polarization-encoded GHZ state with each qubit occupying a certain spectral mode.Both even and odd numbers of GHZ states can be engineered with constant small number of integrated components and easily scaled up on the same chip by only adjusting one of the pumnp wavelengths.In addition,we give the on-chip design of projection measurement for characterizing GHZ states and show the reconfigurability of the state.Our proposal is rather simple and feasible within the existing fabrication technologies and we believe it will boost the development of multiphoton technologies.
出处 《Frontiers of physics》 SCIE CSCD 2020年第6期33-41,共9页 物理学前沿(英文版)
基金 This work was supported by the National Basic Research Program of China(973 Program)(Grand Nos.2017YFA0303700 and 2019YFA0308700) the National Natural Sci-ence Foundation of China(Grant Nos.61632021,and 11690031) Open Funds from the State Key Laboratory of High Perfor-mance Computing of China(HPCL,National University of Defense Technology).
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