论文标题

基质产品状态模拟量子淬灭和库仑封锁超导装置的运输

Matrix product state simulations of quantum quenches and transport in Coulomb blockaded superconducting devices

论文作者

Chung, Chia-Min, Wauters, Matteo M., Burrello, Michele

论文摘要

超导设备受到强大的能量相互作用和库仑封锁是开发纳米电子产品的关键要素之一,并且构成了量子计算平台和拓扑超导设置的共同构建块。对它们的运输特性的研究是非平凡的,他们的某些非扰动方面很难用最普通的技术来捕获。在这里,我们提出了一种矩阵产品状态方法,以模拟这些系统的实时动力学。我们根据对将这种设备与外部导线连接的量子淬火后的电流分析进行研究。我们的方法是基于铅链构造的组合,以及用于超导散射器的平均田野bcs描述。特别是,我们采用了准粒子能量本质,大大降低了它们的纠缠生长,并引入了辅助自由度来编码设备总电荷。这种方法使我们能够对其充电能量进行非扰动和与外部电极的耦合。我们表明,我们的构建能够描述具有子段状态的超导点的库仑钻石结构,包括其顺序隧道和共同渠道特征。我们还研究了由封锁的Kitaev链中Majorana模式引起的电导零偏置峰,并将我们的结果与常见的Breit-Wigner预测进行了比较。

Superconducting devices subject to strong charging energy interactions and Coulomb blockade are one of the key elements for the development of nanoelectronics and constitute common building blocks of quantum computation platforms and topological superconducting setups. The study of their transport properties is non-trivial and some of their non-perturbative aspects are hard to capture with the most ordinary techniques. Here we present a matrix product state approach to simulate the real-time dynamics of these systems. We propose a study of their transport based on the analysis of the currents after quantum quenches connecting such devices with external leads. Our method is based on the combination of a Wilson chain construction for the leads and a mean-field BCS description for the superconducting scatterers. In particular, we employ a quasiparticle energy eigenbasis which greatly reduces their entanglement growth and we introduce an auxiliary degree of freedom to encode the device total charge. This approach allows us to treat non-perturbatively both their charging energy and coupling with external electrodes. We show that our construction is able to describe the Coulomb diamond structure of a superconducting dot with subgap states, including its sequential tunneling and cotunneling features. We also study the conductance zero-bias peaks caused by Majorana modes in a blockaded Kitaev chain, and compare our results with common Breit-Wigner predictions.

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