English

Transverse mode-encoded quantum gate on a silicon photonic chip

Quantum Physics 2022-02-23 v1 Optics

Abstract

As an important degree of freedom (DoF) in integrated photonic circuits, the orthogonal transverse mode provides a promising and flexible way to increasing communication capability, for both classical and quantum information processing. To construct large-scale on-chip multimode multi-DoF quantum systems, a transverse mode-encoded controlled-NOT (CNOT) gate is necessary. Here, through design and integrate transverse mode-dependent directional coupler and attenuators on a silicon photonic chip, we demonstrate the first multimode implementation of a two-qubit quantum gate. With the aid of state preparation and analysis parts, we show the ability of the gate to entangle two separated transverse mode qubits with an average fidelity of 0.89±0.020.89\pm0.02 and the achievement of 10 standard deviations of violations in the quantum nonlocality verification. In addition, a fidelity of 0.82±0.010.82\pm0.01 was obtained from quantum process tomography used to completely characterize the CNOT gate. Our work paves the way for universal transverse mode-encoded quantum operations and large-scale multimode multi-DoF quantum systems.

Keywords

Cite

@article{arxiv.2111.04257,
  title  = {Transverse mode-encoded quantum gate on a silicon photonic chip},
  author = {Lan-Tian Feng and Ming Zhang and Xiao Xiong and Di Liu and Yu-Jie Cheng and Fang-Ming Jing and Xiao-Zhuo Qi and Yang Chen and De-Yong He and Guo-Ping Guo and Guang-Can Guo and Dao-Xin Dai and Xi-Feng Ren},
  journal= {arXiv preprint arXiv:2111.04257},
  year   = {2022}
}
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