Stiegekötter Dennis, Pogorzelski Jens, Horsthemke Ludwig, Hoffmann Frederik, Gregor Markus, Glösekötter Peter
Department of Electrical Engineering and Computer Science, FH Münster-University of Applied Sciences, Stegerwaldstraße 39, 48565 Steinfurt, Germany.
Department of Engineering Physics, FH Münster-University of Applied Sciences, Stegerwaldstraße 39, 48565 Steinfurt, Germany.
Sensors (Basel). 2024 May 15;24(10):3138. doi: 10.3390/s24103138.
Long coherence times at room temperature make the NV center a promising candidate for quantum sensors and quantum computers. The necessary coherent control of the electron spin triplet in the ground state requires microwave π pulses in the nanosecond range, obtained from the Rabi oscillation of the m spin states of the magnetic resonances of the NV centers. Laboratory equipment has a high temporal resolution for these measurements but is expensive and, therefore, uninteresting for fields such as education. In this work, we present measurement electronics for NV centers that are optimized for microcontrollers. It is shown that the Rabi frequency is linear to the output of the digital-to-analog converter (DAC) and is used to adapt the time length π of the electron spin flip, to the limited pulse width resolution of the microcontroller. This was achieved by breaking down the most relevant functions of conventional laboratory devices and replacing them with commercially available integrated components. The result is a cost-effective handheld setup for coherent control applications of NV centers.
室温下的长相干时间使氮空位(NV)中心成为量子传感器和量子计算机的一个有前景的候选者。对基态电子自旋三重态进行必要的相干控制需要纳秒范围内的微波π脉冲,该脉冲可通过NV中心磁共振的m自旋态的拉比振荡获得。实验室设备对这些测量具有高时间分辨率,但价格昂贵,因此对教育等领域来说并不适用。在这项工作中,我们展示了针对微控制器进行优化的用于NV中心的测量电子设备。结果表明,拉比频率与数模转换器(DAC)的输出呈线性关系,并用于使电子自旋翻转的时间长度π适应微控制器有限的脉冲宽度分辨率。这是通过分解传统实验室设备的最相关功能并用市售集成组件替代它们来实现的。其结果是一种用于NV中心相干控制应用的经济高效的手持式装置。