论文标题

锗量子信息路线

The germanium quantum information route

论文作者

Scappucci, Giordano, Kloeffel, Christoph, Zwanenburg, Floris A., Loss, Daniel, Myronov, Maksym, Zhang, Jian-Jun, De Franceschi, Silvano, Katsaros, Georgios, Veldhorst, Menno

论文摘要

在全球范围内的破坏性量子技术努力中,锗正在成为一种多功能材料,以实现能够编码,处理或传输量子信息的设备。这些设备利用锗价波段状态的特殊特性,通常称为孔,例如它们固有的强旋轨耦合以及托管超导配对相关性的能力。在这篇综述中,我们最初从理论的角度介绍了具有关键见解的低维锗结构中的孔物理学。然后,我们研究了基于锗的平面异质结构和纳米线的材料科学进步。我们回顾了最重要的实验结果,这些结果证明了量子技术的关键构建块,例如带有量子点的自旋Qubit的电动通用量子门,以及用于混合量子系统的量子点和超导体 - 触发器设备。我们通过确定可扩展量子信息处理的最有希望的前景来得出结论。

In the worldwide endeavor for disruptive quantum technologies, germanium is emerging as a versatile material to realize devices capable of encoding, processing, or transmitting quantum information. These devices leverage special properties of the germanium valence-band states, commonly known as holes, such as their inherently strong spin-orbit coupling and the ability to host superconducting pairing correlations. In this Review, we initially introduce the physics of holes in low-dimensional germanium structures with key insights from a theoretical perspective. We then examine the material science progress underpinning germanium-based planar heterostructures and nanowires. We review the most significant experimental results demonstrating key building blocks for quantum technology, such as an electrically driven universal quantum gate set with spin qubits in quantum dots and superconductor-semiconductor devices for hybrid quantum systems. We conclude by identifying the most promising prospects toward scalable quantum information processing.

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