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利用固态自旋系综实现稳健且精确的电场传感。

Robust and Accurate Electric Field Sensing with Solid State Spin Ensembles.

作者信息

Michl Julia, Steiner Jakob, Denisenko Andrej, Bülau André, Zimmermann André, Nakamura Kazuo, Sumiya Hitoshi, Onoda Shinobu, Neumann Philipp, Isoya Junichi, Wrachtrup Jörg

机构信息

3. Physikalisches Institut , University of Stuttgart , Pfaffenwaldring 57 , Stuttgart 70569 , Germany.

Hahn-Schickard , Allmandring 9b , Stuttgart 70569 , Germany.

出版信息

Nano Lett. 2019 Aug 14;19(8):4904-4910. doi: 10.1021/acs.nanolett.9b00900. Epub 2019 Aug 2.

Abstract

Electron spins in solids constitute remarkable quantum sensors. Individual defect centers in diamond were used to detect individual nuclear spins with a nanometer scale resolution, and ensemble magnetometers rival SQUID and vapor cell magnetometers when taking into account room-temperature operation and size. NV center spins can also detect electric field vectors, despite their weak coupling to electric fields. Here, we employ ensembles of NV center spins to measure macroscopic AC electric fields with high precision. We utilize low strain, C enriched diamond to achieve the maximum sensitivity and tailor the spin Hamiltonian via the proper magnetic field adjustment to map out the AC electric field strength and polarization and arrive at refined electric field coupling constants. For high-precision measurements, we combine classical lock-in detection with aspects from quantum phase estimation for the effective suppression of technical noise. Eventually, this enables uncertainty scaling of the electric field strength over extended averaging periods, enabling us to reach a precision down to 10 V/μm for an AC electric field with a frequency of 2 kHz and an amplitude of 0.012 V/ μm.

摘要

固体中的电子自旋构成了卓越的量子传感器。金刚石中的单个缺陷中心被用于以纳米级分辨率检测单个核自旋,并且考虑到室温操作和尺寸,系综磁力计可与超导量子干涉仪(SQUID)和蒸汽池磁力计相媲美。尽管氮空位(NV)中心自旋与电场的耦合较弱,但它们也能检测电场矢量。在此,我们利用NV中心自旋系综来高精度测量宏观交流电场。我们使用低应变、富含碳的金刚石来实现最大灵敏度,并通过适当的磁场调整来定制自旋哈密顿量,以描绘出交流电场强度和极化情况,并得出精确的电场耦合常数。为了进行高精度测量,我们将经典的锁相检测与量子相位估计的方法相结合,以有效抑制技术噪声。最终,这使得在延长的平均周期内电场强度的不确定性得以按比例缩小,使我们能够在频率为2 kHz、幅度为0.012 V/μm的交流电场下达到低至10 V/μm的精度。

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