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一种栅极可调谐石墨烯约瑟夫森参量放大器。

A gate-tunable graphene Josephson parametric amplifier.

作者信息

Butseraen Guilliam, Ranadive Arpit, Aparicio Nicolas, Rafsanjani Amin Kazi, Juyal Abhishek, Esposito Martina, Watanabe Kenji, Taniguchi Takashi, Roch Nicolas, Lefloch François, Renard Julien

机构信息

Université Grenoble Alpes, CNRS, Grenoble INP, Institut Néel, Grenoble, France.

Université Grenoble Alpes, CEA, LETI, Grenoble, France.

出版信息

Nat Nanotechnol. 2022 Nov;17(11):1153-1158. doi: 10.1038/s41565-022-01235-9. Epub 2022 Oct 24.

Abstract

With a large portfolio of elemental quantum components, superconducting quantum circuits have contributed to advances in microwave quantum optics. Of these elements, quantum-limited parametric amplifiers are essential for low noise readout of quantum systems whose energy range is intrinsically low (tens of μeV). They are also used to generate non-classical states of light that can be a resource for quantum enhanced detection. Superconducting parametric amplifiers, such as quantum bits, typically use a Josephson junction as a source of magnetically tunable and dissipation-free non-linearity. In recent years, efforts have been made to introduce semiconductor weak links as electrically tunable non-linear elements, with demonstrations of microwave resonators and quantum bits using semiconductor nanowires, a two-dimensional electron gas, carbon nanotubes and graphene. However, given the challenge of balancing non-linearity, dissipation, participation and energy scale, parametric amplifiers have not yet been implemented with a semiconductor weak link. Here, we demonstrate a parametric amplifier leveraging a graphene Josephson junction and show that its working frequency is widely tunable with a gate voltage. We report gain exceeding 20 dB and noise performance close to the standard quantum limit. Our results expand the toolset for electrically tunable superconducting quantum circuits. They also offer opportunities for the development of quantum technologies such as quantum computing, quantum sensing and for fundamental science.

摘要

凭借大量的基本量子组件,超导量子电路推动了微波量子光学的发展。在这些元件中,量子极限参量放大器对于本征能量范围较低(几十微电子伏特)的量子系统的低噪声读出至关重要。它们还用于产生可作为量子增强检测资源的非经典光态。超导参量放大器,如量子比特,通常使用约瑟夫森结作为磁可调且无耗散非线性的来源。近年来,人们努力引入半导体弱链接作为电可调非线性元件,并展示了使用半导体纳米线、二维电子气、碳纳米管和石墨烯的微波谐振器和量子比特。然而,鉴于在平衡非线性、耗散、参与度和能量尺度方面的挑战,参量放大器尚未通过半导体弱链接实现。在此,我们展示了一种利用石墨烯约瑟夫森结的参量放大器,并表明其工作频率可通过栅极电压广泛调谐。我们报告增益超过20分贝,噪声性能接近标准量子极限。我们的结果扩展了电可调超导量子电路的工具集。它们还为量子计算、量子传感等量子技术以及基础科学的发展提供了机会。

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