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用于生成路径编码贝尔态的集成光子量子芯片的飞秒激光直写技术

Femtosecond Laser Direct Writing of Integrated Photonic Quantum Chips for Generating Path-Encoded Bell States.

作者信息

Li Meng, Zhang Qian, Chen Yang, Ren Xifeng, Gong Qihuang, Li Yan

机构信息

State Key Laboratory for Mesoscopic Physics and Frontiers Science Center for Nano-Optoelectronics, School of Physics, Peking University, Beijing 100871, China.

CAS Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei 230026, China.

出版信息

Micromachines (Basel). 2020 Dec 15;11(12):1111. doi: 10.3390/mi11121111.

Abstract

Integrated photonic quantum chip provides a promising platform to perform quantum computation, quantum simulation, quantum metrology and quantum communication. Femtosecond laser direct writing (FLDW) is a potential technique to fabricate various integrated photonic quantum chips in glass. Several quantum logic gates fabricated by FLDW have been reported, such as polarization and path encoded quantum controlled-NOT (CNOT) gates. By combining several single qubit gates and two qubit gates, the quantum circuit can realize different functions, such as generating quantum entangled states and performing quantum computation algorithms. Here we demonstrate the FLDW of integrated photonic quantum chips composed of one Hadamard gate and one CNOT gate for generating all four path-encoded Bell states. The experimental results show that the average fidelity of the reconstructed truth table reaches as high as 98.8 ± 0.3%. Our work is of great importance to be widely applied in many quantum circuits, therefore this technique would offer great potential to fabricate more complex circuits to realize more advanced functions.

摘要

集成光子量子芯片为执行量子计算、量子模拟、量子计量和量子通信提供了一个很有前景的平台。飞秒激光直写(FLDW)是一种在玻璃中制造各种集成光子量子芯片的潜在技术。已经报道了几种通过飞秒激光直写制造的量子逻辑门,例如偏振和路径编码量子受控非门(CNOT门)。通过组合几个单量子比特门和双量子比特门,量子电路可以实现不同的功能,例如生成量子纠缠态和执行量子计算算法。在这里,我们展示了由一个哈达玛门和一个CNOT门组成的用于生成所有四个路径编码贝尔态的集成光子量子芯片的飞秒激光直写。实验结果表明,重建真值表的平均保真度高达98.8±0.3%。我们的工作对于在许多量子电路中的广泛应用非常重要,因此该技术将为制造更复杂的电路以实现更先进的功能提供巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/05a7/7765531/f9bfa7898d52/micromachines-11-01111-g001.jpg

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