论文标题

硅中的果冻量子点进行量子耦合和芯片量子化学

Jellybean quantum dots in silicon for qubit coupling and on-chip quantum chemistry

论文作者

Wang, Zeheng, Feng, MengKe, Serrano, Santiago, Gilbert, William, Leon, Ross C. C., Tanttu, Tuomo, Mai, Philip, Liang, Dylan, Huang, Jonathan Y., Su, Yue, Lim, Wee Han, Hudson, Fay E., Escott, Christopher C., Morello, Andrea, Yang, Chih Hwan, Dzurak, Andrew S., Saraiva, Andre, Laucht, Arne

论文摘要

硅金属 - 氧化物 - 轴导剂(SIMOS)量子点旋转量子的尺寸小和出色的一体化使它们成为可质量制造的,缩放的量子处理器的吸引力系统。此外,如果选择了具有稀疏的Qubits阵列的体系结构,则可以在Qubits之间的芯片上集成经典的控制电子设备。在这样的架构中,量子位要么通过穿梭在芯片上运输,要么通过短途距离距离的量子系统耦合。本文研究了一个伸长的量子点的电荷和自旋特性(所谓的果冻量子点),以充当Qubit-Qubit耦合器的前景。在MK温度下,在SIMOS量子点设备上进行电荷传输,电荷传感和磁光谱测量值,并将其与Hartree-Fock多电子模拟进行比较。在低电子占有的情况下,在静电限制电位上占主导地位的混乱效应和强烈的电子电子相互作用,数据揭示了三个耦合点的形成,类似于可调的,人工分子。一个点在门下方形成,在边缘形成两个点。在高电子占用率下,这些点合并为一个具有明确定义的自旋状态的大点,验证了Jellybean点是否有可能在未来的量子计算体系结构中用作量子耦合器。

The small size and excellent integrability of silicon metal-oxide-semiconductor (SiMOS) quantum dot spin qubits make them an attractive system for mass-manufacturable, scaled-up quantum processors. Furthermore, classical control electronics can be integrated on-chip, in-between the qubits, if an architecture with sparse arrays of qubits is chosen. In such an architecture qubits are either transported across the chip via shuttling, or coupled via mediating quantum systems over short-to-intermediate distances. This paper investigates the charge and spin characteristics of an elongated quantum dot -- a so-called jellybean quantum dot -- for the prospects of acting as a qubit-qubit coupler. Charge transport, charge sensing and magneto-spectroscopy measurements are performed on a SiMOS quantum dot device at mK temperature, and compared to Hartree-Fock multi-electron simulations. At low electron occupancies where disorder effects and strong electron-electron interaction dominate over the electrostatic confinement potential, the data reveals the formation of three coupled dots, akin to a tunable, artificial molecule. One dot is formed centrally under the gate and two are formed at the edges. At high electron occupancies, these dots merge into one large dot with well-defined spin states, verifying that jellybean dots have the potential to be used as qubit couplers in future quantum computing architectures.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源