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一款采用0.18μm SiGe BiCOMOS技术的1.25GHz多幅度调制器驱动器,用于高速量子密钥分发。

A 1.25-GHz multi-amplitude modulator driver in 0.18 μm SiGe BiCOMOS technology for high speed quantum key distribution.

作者信息

Chen Zhao-Yuan, Zhu Chen-Xi, Huang Zhi-Sheng, Li Yang, Wang Xin-Zhe, Liang Fu-Tian, Jin Ge, Cai Wen-Qi, Liao Sheng-Kai, Peng Cheng-Zhi

机构信息

Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei 230026, China.

Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai 201315, China.

出版信息

Rev Sci Instrum. 2023 Oct 1;94(10). doi: 10.1063/5.0167218.

Abstract

Quantum key distribution (QKD) research has yielded highly fruitful results and is currently undergoing an industrialization transformation. In QKD systems, electro-optic modulators are typically employed to prepare the required quantum states. While various QKD systems operating at GHz repetition frequency have demonstrated exceptional performance, they predominantly rely on instruments or printed circuit boards to fulfill the driving circuit function of the electro-optic modulator. Consequently, these systems tend to be complex with low integration levels. To address this challenge, we have introduced a modulator driver integrated circuit in 0.18 µm SiGe BiCMOS technology. The circuit can generate multiple-level driving signals with a clock frequency of 1.25 GHz and a rising edge of ∼50 ps. Each voltage amplitude can be independently adjusted, ensuring the precise preparation of quantum states. The measured signal-to-noise ratio was more than 17 dB, resulting in a low quantum bit error rate of 0.24% in our polarization-encoding system. This work will contribute to the advancement of QKD system integration and promote the industrialization process in this field.

摘要

量子密钥分发(QKD)研究已取得丰硕成果,目前正处于产业化转型阶段。在QKD系统中,通常采用电光调制器来制备所需的量子态。虽然各种工作在GHz重复频率的QKD系统已展现出卓越性能,但它们主要依靠仪器或印刷电路板来实现电光调制器的驱动电路功能。因此,这些系统往往较为复杂且集成度较低。为应对这一挑战,我们采用0.18 µm SiGe BiCMOS技术推出了一种调制器驱动集成电路。该电路能够生成时钟频率为1.25 GHz且上升沿约为50 ps的多级驱动信号。每个电压幅度均可独立调节,从而确保量子态的精确制备。测得的信噪比超过17 dB,在我们的偏振编码系统中产生了0.24%的低量子误码率。这项工作将有助于推动QKD系统集成的发展,并促进该领域的产业化进程。

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