Yin Cai
Pierre-and-Marie-Curie University
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Publication
Featured researches published by Yin Cai.
Physical Review Letters | 2015
Stefan Gerke; J. Sperling; W. Vogel; Yin Cai; J. Roslund; Nicolas Treps; Claude Fabre
An analysis is conducted of the multipartite entanglement for Gaussian states generated by the parametric down-conversion of a femtosecond frequency comb. Using a recently introduced method for constructing optimal entanglement criteria, a family of tests is formulated for mode decompositions that extends beyond the traditional bipartition analyses. A numerical optimization over this family is performed to achieve maximal significance of entanglement verification. For experimentally prepared 4-, 6-, and 10-mode states, full entanglement is certified for all of the 14, 202, and 115 974 possible nontrivial partitions, respectively.
Physical Review A | 2014
R. Medeiros de Araújo; J. Roslund; Yin Cai; Giulia Ferrini; Claude Fabre; Nicolas Treps
We present a detailed analysis of the multimode quantum state embedded in an optical frequency comb generated by a Synchronously Pumped Optical Parametric Oscillator (SPOPO). The full covariance matrix of the state is obtained with homodyne detection where the local oscillator is spectrally controlled with pulse shaping techniques. The resulting matrix reveals genuine multipartite entanglement. Additionally, the beam is comprised of several independent eigenmodes that correspond to specific pulse shapes. The experimental data is confirmed with numerical simulations. Finally, the potential to create continuous-variable cluster states from the quantum comb is analyzed. Multiple cluster states are shown to be simultaneously embedded in the SPOPO state, and these states can be revealed by a suitable basis change applied to the measured covariance matrix.
Physical Review A | 2015
Yin Cai; Jingliang Feng; Hailong Wang; Giulia Ferrini; Xinye Xu; Jietai Jing; Nicolas Treps
We present a scheme to realize versatile quantum networks by cascading several four-wave mixing (FWM) processes in warm rubidium vapors. FWM is an efficient
Nature Communications | 2017
Yin Cai; J. Roslund; Giulia Ferrini; F. Arzani; Xinye Xu; Claude Fabre; Nicolas Treps
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Physical Review Letters | 2016
Stefan Gerke; J. Sperling; W. Vogel; Yin Cai; J. Roslund; Nicolas Treps; Claude Fabre
nonlinear process, already used as a resource for multimode quantum state generation and which has been proved to be a promising candidate for applications to quantum information processing. We analyze theoretically the multimode output of cascaded FWM systems, derive its independent squeezed modes, and show how, with phase controlled homodyne detection and digital postprocessing, they can be turned into a versatile source of continuous variable cluster states.
Physical Review A | 2015
Giulia Ferrini; Jonathan Roslund; Francesco Arzani; Yin Cai; Claude Fabre; Nicolas Treps
Multimode entanglement is an essential resource for quantum information processing and quantum metrology. However, multimode entangled states are generally constructed by targeting a specific graph configuration. This yields to a fixed experimental setup that therefore exhibits reduced versatility and scalability. Here we demonstrate an optical on-demand, reconfigurable multimode entangled state, using an intrinsically multimode quantum resource and a homodyne detection apparatus. Without altering either the initial squeezing source or experimental architecture, we realize the construction of thirteen cluster states of various sizes and connectivities as well as the implementation of a secret sharing protocol. In particular, this system enables the interrogation of quantum correlations and fluctuations for any multimode Gaussian state. This initiates an avenue for implementing on-demand quantum information processing by only adapting the measurement process and not the experimental layout.
Research in Optical Sciences (2014), paper QW1B.5 | 2014
Nicolas Treps; J. Roslund; Yin Cai; Giulia Ferrini; Claude Fabre
The existence of non-local quantum correlations is certainly the most important specific property of the quantum world. However, it is a challenging task to distinguish correlations of classical origin from genuine quantum correlations, especially when the system involves more than two parties, for which different partitions must be simultaneously considered. In the case of mixed states, intermediate levels of correlations must be introduced, coined by the name inseparability. In this work, we revisit in more detail such a concept in the context of continuous-variable quantum optics. We consider a six-partite quantum state that we have effectively generated by the parametric downconversion of a femtosecond frequency comb, the full 12 × 12 covariance matrix of which has been experimentally determined. We show that, though this state does not exhibit ”genuine entanglement”, it is undoubtedly multipartite-entangled. The consideration of not only the entanglement of individual mode-decompositions but also of combinations of those solves the puzzle and exemplifies the importance of studying different categories of multipartite entanglement.
arXiv: Quantum Physics | 2016
Yin Cai; J. Roslund; Giulia Ferrini; Francesco Arzani; X. Xu; Claude Fabre; N. Treps
This work introduces optimization strategies to continuous variable measurement based quantum computation (MBQC) at different levels. We provide a recipe for mitigating the effects of finite squeezing, which affect the production of cluster states and the result of a traditional MBQC. These strategies are readily implementable by several experimental groups. Furthermore, a more general scheme for MBQC is introduced that does not necessarily rely on the use of ancillary cluster states to achieve its aim, but rather on the detection of a resource state in a suitable mode basis followed by digital post-processing. A recipe is provided to optimize the adjustable parameters that are employed within this framework.
conference on lasers and electro optics | 2016
Jonathan Roslund; Yin Cai; Claude Fabre; Nicolas Treps
We demonstrate the single-step fabrication of a quantum network from the parametric downconversion of femtosecond frequency combs. Ultrafast pulse shaping is employed to both characterize the comb’s spectral entanglement and generate on-demand cluster state.
conference on lasers and electro optics | 2016
Clément Jacquard; Valentin Averchenko; Young-Sik Ra; Jonathan Roslund; Yin Cai; Adrien Dufour; Claude Fabre; Nicolas Treps