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29.2 A Scalable Quantum Magnetometer in 65nm CMOS with Vector-Field Detection Capability

机译:29.2可伸缩量子磁力计在65nm CMOS中,具有载体场检测能力

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Room-temperature control and detection of the nitrogen vacancy (NV) center in diamond's spin-state has enabled magnetic sensing with high sensitivity and spatial resolution [1], [2]. However, current NV sensing apparatuses use bulky off-the-shelf components, which greatly increase the system's scale. In [3], a compact platform, which attaches nanodiamond particles to a CMOS sensor, shrinks this spin-based magnetometer to chip scale; however, the optically detected magnetic resonance (ODMR) curve it generates carries large fluctuation leading to inferior sensitivity. In this paper, we present a CMOS-NV quantum sensor with (i) a highly-scalable microwave-delivering structure and (ii) a Talbot-effect-based photonic filter with enhanced green-to-red suppression ratio. The former enables coherent driving of an increased number of NV centers, and the latter reduces the shot noise of the photo-detector caused by the input green laser. In addition, the usage of a bulk diamond also enables vector magnetometry, which allows for the tracking of magnetic objects and navigation. The prototype sensor provides a measured vector-field sensitivity of 245nT/Hz1/2.
机译:金刚石的旋转状态下的室温控制和检测氮空位(NV)中心具有高灵敏度和空间分辨率的磁性感知[1],[2]。然而,当前的NV传感装置使用大量的搁板组件,这大大增加了系统的规模。在[3]中,一个紧凑的平台,将纳米二胺颗粒连接到CMOS传感器,将该基于旋转的磁力计收缩到芯片尺度;然而,光学检测的磁共振(ODMR)曲线产生的曲线具有大的波动,导致较差的灵敏度。在本文中,我们介绍了一种具有(i)高度可扩展的微波输送结构的CMOS-NV量子传感器和(ii)基于Talbot效应的光子过滤器,具有增强的绿色对红色抑制比。前者使得能够连贯地驱动增加数量的NV中心,并且后者减少了由输入的绿色激光引起的光检测器的射击噪声。另外,散装金刚石的使用还使矢量磁力学能够允许跟踪磁对象和导航。原型传感器提供了245nt / hz的测量载体场敏感性 1/2

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