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在有偏置的基于石墨烯的多端约瑟夫森结中库珀四重态4e电荷的证据。

Evidence for 4e charge of Cooper quartets in a biased multi-terminal graphene-based Josephson junction.

作者信息

Huang Ko-Fan, Ronen Yuval, Mélin Régis, Feinberg Denis, Watanabe Kenji, Taniguchi Takashi, Kim Philip

机构信息

Department of Physics, Harvard University, Cambridge, MA, 02138, USA.

Université Grenoble-Alpes, CNRS, Grenoble INP, Institut NEEL, 38000, Grenoble, France.

出版信息

Nat Commun. 2022 May 31;13(1):3032. doi: 10.1038/s41467-022-30732-7.

Abstract

In a Josephson junction (JJ) at zero bias, Cooper pairs are transported between two superconducting contacts via the Andreev bound states (ABSs) formed in the Josephson channel. Extending JJs to multiple superconducting contacts, the ABSs in the Josephson channel can coherently hybridize Cooper pairs among different superconducting electrodes. Biasing three-terminal JJs with antisymmetric voltages, for example, results in a direct current (DC) of Cooper quartet (CQ), which involves a four-fermion entanglement. Here, we report half a flux periodicity in the interference of CQ formed in graphene based multi-terminal (MT) JJs with a magnetic flux loop. We observe that the quartet differential conductance associated with supercurrent exhibits magneto-oscillations associated with a charge of 4e, thereby presenting evidence for interference between different CQ processes. The CQ critical current shows non-monotonic bias dependent behavior, which can be modeled by transitions between Floquet-ABSs. Our experimental observation for voltage-tunable non-equilibrium CQ-ABS in flux-loop-JJs significantly extends our understanding of MT-JJs, enabling future design of topologically unique ABS spectrum.

摘要

在零偏置的约瑟夫森结(JJ)中,库珀对通过约瑟夫森通道中形成的安德烈夫束缚态(ABS)在两个超导接触之间传输。将JJ扩展到多个超导接触时,约瑟夫森通道中的ABS可以使不同超导电极之间的库珀对相干杂化。例如,用反对称电压偏置三端JJ会导致库珀四重奏(CQ)的直流(DC),这涉及四费米子纠缠。在此,我们报告了基于石墨烯的多端(MT)JJ与磁通量回路中形成的CQ干涉中的半个磁通周期性。我们观察到与超电流相关的四重奏微分电导表现出与4e电荷相关的磁振荡,从而为不同CQ过程之间的干涉提供了证据。CQ临界电流表现出非单调的偏置依赖行为,这可以通过弗洛凯-ABS之间的跃迁来建模。我们对磁通回路-JJ中电压可调非平衡CQ-ABS的实验观察显著扩展了我们对MT-JJ的理解,为未来拓扑独特的ABS光谱设计提供了可能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a539/9156765/58ee575edc17/41467_2022_30732_Fig1_HTML.jpg

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