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Parity effect and single-electron injection for Josephson junction chains deep in the insulating state

机译:处于绝缘状态深处的约瑟夫森结链的奇偶效应和单电子注入

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摘要

We have made a systematic investigation of charge transport in one-dimensional chains of Josephson junctions where the characteristic Josephson energy is much less than the single-junction Cooper-pair charging energy, E_J () E_(CP). Such chains are deep in the insulating state, where superconducting phase coherence across the chain is absent, and a voltage threshold for conduction is observed at the lowest temperatures. We find that Cooper-pair tunneling in such chains is completely suppressed. Instead, charge transport is dominated by tunneling of single electrons, which is very sensitive to the presence of BCS quasiparticles on the superconducting islands of the chain. Consequently, we observe a strong parity effect, where the threshold voltage vanishes sharply at a characteristic parity temperature T~*7 which is significantly lower than the critical temperature T_c. A measurable and thermally activated zero-bias conductance appears above T~* with an activation energy equal to the superconducting gap, confirming the role of thermally excited quasiparticles. Conduction below T~* and above the voltage threshold occurs via injection of single electrons/holes into the Cooper-pair insulator, forming a nonequilibrium steady state with a significantly enhanced effective temperature. Our results explicitly show that single-electron transport dominates deep in the insulating state of Josephson junction arrays. This conduction process has mostly been ignored in previous studies of both superconducting junction arrays and granular superconducting films below the superconductor-insulator quantum phase transition.
机译:我们对约瑟夫森结的一维链中的电荷传输进行了系统的研究,其中约瑟夫森的特征能量远小于单结库珀对电荷能量E_J()E_(CP)。这样的链处于绝缘状态的深处,其中不存在跨链的超导相干,并且在最低温度下观察到用于传导的电压阈值。我们发现这种链中的库珀对隧穿被完全抑制了。取而代之的是,电荷传输以单电子的隧穿为主,这对链的超导岛上BCS准粒子的存在非常敏感。因此,我们观察到强烈的奇偶校验效应,其中阈值电压在特征奇偶校验温度T〜* 7显着低于临界温度T_c时急剧消失。在T〜*上方出现了可测量且热激活的零偏置电导,其激活能等于超导间隙,证实了热激发的准粒子的作用。低于T〜*且高于电压阈值的电导是通过将单个电子/空穴注入库珀对绝缘子中而发生的,从而形成具有显着提高的有效温度的非平衡稳态。我们的结果明确表明,在约瑟夫森结阵列的绝缘状态下,单电子传输占主导地位。在先前对超导-绝缘体量子相变以下的超导结阵列和粒状超导膜的研究中,大多数都忽略了这种传导过程。

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