论文标题

固体霓虹灯表面上的电子自旋连贯性

Electron spin coherence on a solid neon surface

论文作者

Chen, Qianfan, Martin, Ivar, Jiang, Liang, Jin, Dafei

论文摘要

由于此类系统的特殊纯度,浮在浓缩气体液体或固体表面上的单个电子可以充当超相干时间的自旋量子。先前的研究表明,超氟(HE)表面上的电子自旋相干时间可能超过100 s。在本文中,我们介绍了固体霓虹灯(NE)表面上电子自旋相干性的理论研究,这是我们最近对固体NE上单电子电荷Qubit的实验实现的动机。研究了的主要自旋破坏机制包括由于热声子引起的波动NE磁磁敏感性,正常金属电极中的波动热电流以及$^{21} $ ne Ne Ensemble的准稳态波动的核自旋。我们发现,在典型的实验温度下,在完全超导的装置中,在完全超导的装置中,电子自旋变谐性由第三个机制通过电子核自旋旋转相互作用支配。对于$^{21} $ NE的2700 ppm丰度的天然NE,估计的不均匀dephasing时间$ t_ {2}^{*} $的含量大约为0.16毫秒,已经比大多数半导体量子量子点旋转量子量。对于市售的,$^{21} $ ne,$ t_ {2}^{*} $的$^{21} $ ne,可以是$ 0.43 $ s。在Hahn Echoes的应用下,连贯的时间$ t_ {2} $可以提高到自然NE的$ 30 $ MS,净化NE的$ 81 $ s。因此,固体NE上的单电子旋转Qubits可以用作有前途的新自旋Qubits。

A single electron floating on the surface of a condensed noble-gas liquid or solid can act as a spin qubit with ultralong coherence time, thanks to the extraordinary purity of such systems. Previous studies suggest that the electron spin coherence time on a superfluid helium (He) surface can exceed 100 s. In this paper, we present theoretical studies of the electron spin coherence on a solid neon (Ne) surface, motivated by our recent experimental realization of single-electron charge qubit on solid Ne. The major spin decoherence mechanisms investigated include the fluctuating Ne diamagnetic susceptibility due to thermal phonons, the fluctuating thermal current in normal metal electrodes, and the quasi-statically fluctuating nuclear spins of the $^{21}$Ne ensemble. We find that at a typical experimental temperature about 10 mK in a fully superconducting device, the electron spin decoherence is dominated by the third mechanism via electron-nuclear spin-spin interaction. For natural Ne with 2700 ppm abundance of $^{21}$Ne, the estimated inhomogeneous dephasing time $T_{2}^{*}$ is around 0.16 ms, already better than most semiconductor quantum-dot spin qubits. For commercially available, isotopically purified Ne with 1 ppm of $^{21}$Ne, $T_{2}^{*}$ can be $0.43$ s. Under the application of Hahn echoes, the coherence time $T_{2}$ can be improved to $30$ ms for natural Ne and $81$ s for purified Ne. Therefore, the single-electron spin qubits on solid Ne can serve as promising new spin qubits.

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