论文标题

片上的高保真生成四个光子GHz状态

High-fidelity generation of four-photon GHZ states on-chip

论文作者

Pont, Mathias, Corrielli, Giacomo, Fyrillas, Andreas, Agresti, Iris, Carvacho, Gonzalo, Maring, Nicolas, Emeriau, Pierre-Emmanuel, Ceccarelli, Francesco, Albiero, Ricardo, Ferreira, Paulo H. D., Somaschi, Niccolo, Senellart, Jean, Sagnes, Isabelle, Morassi, Martina, Lemaitre, Aristide, Senellart, Pascale, Sciarrino, Fabio, Liscidini, Marco, Belabas, Nadia, Osellame, Roberto

论文摘要

相互纠缠的多光子状态是全光量子技术的核心。尽管使用自由空间设备的这种量子光态产生了令人印象深刻的进展,但高保真高利率的芯片纠缠产生对于将来的可伸缩性至关重要。在这项工作中,我们使用基于明亮的量子点的单光子源来证明具有低损坏可重构玻璃光子电路的高忠诚度的4 photon Greenberg-horne-Zeilinger(GHz)状态。我们使用完整的量子状态断层扫描重建生成状态的密度矩阵,达到目标$ | {\ text {ghz} _4} \ rangle $ of $ \ mathcal {f} _ { $ \ Mathcal {p} _ {\ text {ghz} _4} =(76.3 \ pm0.6)\,\%$。生成状态的纠缠通过违反钟形不平等的违反39多个标准偏差的侵犯,并通过半设备的方法进行了认证。最后,我们在片上执行了一个四方量子秘密共享协议,在该协议中,监管机构与三个对话者的股票股份筛选了一个筛分的钥匙,最高为1978年的位,达到了$ 10.87 \,\%$的Qubit-Error率。这些结果表明,量子点技术与芯片上的纠缠产生的玻璃光子电路相结合,为中等规模的量子计算和通信提供了可行的路径。

Mutually entangled multi-photon states are at the heart of all-optical quantum technologies. While impressive progresses have been reported in the generation of such quantum light states using free space apparatus, high-fidelity high-rate on-chip entanglement generation is crucial for future scalability. In this work, we use a bright quantum-dot based single-photon source to demonstrate the high fidelity generation of 4-photon Greenberg-Horne-Zeilinger (GHZ) states with a low-loss reconfigurable glass photonic circuit. We reconstruct the density matrix of the generated states using full quantum-state tomography reaching an experimental fidelity to the target $|{\text{GHZ}_4}\rangle$ of $\mathcal{F}_{\text{GHZ}_4} (86.0\pm0.4)\,\%$, and a purity of $\mathcal{P}_{\text{GHZ}_4}=(76.3\pm0.6)\,\%$. The entanglement of the generated states is certified with a semi device-independent approach through the violation of a Bell-like inequality by more than 39 standard deviations. Finally, we carry out a four-partite quantum secret sharing protocol on-chip where a regulator shares with three interlocutors a sifted key with up to 1978 bits, achieving a qubit-error rate of $10.87\,\%$. These results establish that the quantum-dot technology combined with glass photonic circuitry for entanglement generation on chip offers a viable path for intermediate scale quantum computation and communication.

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