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Dual Shapiro steps of a phase-slip junction in the presence of a parasitic capacitance

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arxiv 1802.08123 v1 pith:GB5NPWZ4 submitted 2018-02-22 cond-mat.mes-hall quant-ph

classification cond-mat.mes-hallquant-ph
keywords capacitanceshapirostepsdualparasiticblochjunctionoscillations
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Bloch oscillations in a single Josephson junction in the phase-slip regime relate current to frequency. They can be measured by applying a periodic drive to a DC-biased, small Josephson junction. Phase-locking between the periodic drive and the Bloch oscillations then gives rise to steps at constant current in the I-V curves, also known as dual Shapiro steps. Unlike conventional Shapiro steps, a measurement of these dual Shapiro steps is impeded by the presence of a parasitic capacitance. This capacitance shunts the junction resulting in a suppression of the amplitude of the Bloch oscillations. This detrimental effect of the parasitic capacitance can be remedied by an on-chip superinductance. Additionally, we introduce a large off-chip resistance to provide the necessary dissipation. We investigate the resulting system by a set of analytical and numerical methods. In particular, we obtain an explicit analytical expression for the height of dual Shapiro steps as a function of the ratio of the parasitic capacitance to the superinductance. Using this result, we provide a quantitative estimate of the dual Shapiro step height. Our calculations reveal that even in the presence of a parasitic capacitance, it should be possible to observe Bloch oscillations with realistic experimental parameters.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Joint Communication and Indoor Positioning Based on Visible Light in the Presence of Dimming

    eess.SP 2025-08 conditional novelty 6.0 of 10

    One kinetic equation for the charge distribution in a small Josephson junction describes both dual (quantum) and classical Shapiro steps, with the regime crossover set by a single relaxation time.

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