Superconductor-semiconductor hybrid capacitance with a nonlinear charge-voltageprofile

Joachim Lauwens, Lars Kerkhofs, Arnau Sala, Bart Soree
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Abstract

Abstract Electronic devices that work in the quantum regime often employ hybrid nanostructures to bring about a nonlinear behaviour. The nonlinearity that these can provide has proven to be useful, in particular, for applications in quantum computation. Here we present a hybrid device that acts as a capacitor with a nonlinear charge–voltage relation. The device consists of a nanowire placed between the plates of a coplanar capacitor, with a co-parallel alignment. At low temperatures, due to the finite density of states on the nanowire, the charge distribution in the capacitor is uneven and energy-dependent, resulting in a charge-dependent effective capacitance. We study this system analytically and numerically, and show that the nonlinearity of the capacitance is significant enough to be utilized in circuit quantum electrodynamics. The resulting nonlinearity can be switched on, modulated, and switched off by an external potential, thus making this capacitive device highly versatile for uses in quantum computation.
具有非线性电荷电压分布的超导体-半导体混合电容
在量子环境下工作的电子器件通常采用混合纳米结构来产生非线性行为。这些可以提供的非线性已被证明是有用的,特别是在量子计算中的应用。在这里,我们提出了一个混合装置,作为一个非线性电荷电压关系的电容器。该装置由放置在共面电容器板之间的纳米线组成,具有共平行对准。在低温下,由于纳米线上的态密度有限,电容器中的电荷分布不均匀且依赖于能量,从而产生电荷依赖的有效电容。对该系统进行了分析和数值研究,结果表明电容的非线性足以用于电路量子电动力学。由此产生的非线性可以通过外部电位开关,调制和关闭,从而使该电容器件在量子计算中具有高度通用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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