Fabrication of tips for scanning probe magnetometry by diamond growth

Arne Götze, Xavier Vidal, Nicola Lang, Christian Giese, Patricia Quellmalz, Jan Jeske, Peter Knittel
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Abstract

The use of quantum sensors is promising detailed insights into physical phenomena such as magnetism or superconductivity. One example of such quantum sensors is a microscopic diamond tip containing nitrogen vacancy (NV) centers, which is capable of producing correlated measurements of vectorial magnetic fields and the sample topography on the nanoscale. In this study, we present a chemical vapor deposition (CVD) process to produce diamond tips with NV centers by overgrowing microstructured diamond substrates. The resulting diamond tips exhibit a radius of curvature of approximately 10 nm, suitable for use as a probe in an atomic force microscope (AFM). The magnetic sensitivity of the CVD-grown diamond tips is characterized with pulsed measurements of the optically detected magnetic resonance (ODMR), which yield a minimum magnetic sensitivity of 60 µT/√Hz. The growth of the diamond microstructures is observed to differ from the commonly used geometric model predicting CVD growth of bulk diamond crystals. We identify an empirical model for the growth behavior of the microstructures by taking into account processes described in the step flow growth model for crystals. Additionally, we demonstrate the applicability of the developed CVD growth process to membrane substrates required for the preparation of magnetometry-capable diamond tips.
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用金刚石生长法制造扫描探针磁强计的针尖
量子传感器的使用有望详细揭示磁性或超导等物理现象。这种量子传感器的一个例子是含有氮空位(NV)中心的微型金刚石尖端,它能够在纳米尺度上对矢量磁场和样品形貌进行相关测量。在这项研究中,我们介绍了一种化学气相沉积(CVD)工艺,通过在微结构金刚石基底上过度生长,生产出含有氮空位中心的金刚石尖端。生成的金刚石尖端曲率半径约为 10 纳米,适合用作原子力显微镜 (AFM) 的探针。CVD 生长的金刚石尖端的磁灵敏度是通过光学检测磁共振 (ODMR) 的脉冲测量得出的,其最小磁灵敏度为 60 µT/√Hz。据观察,金刚石微结构的生长与常用的预测块状金刚石晶体 CVD 生长的几何模型不同。通过考虑晶体阶梯流生长模型中描述的过程,我们确定了微结构生长行为的经验模型。此外,我们还证明了所开发的 CVD 生长过程适用于制备具有磁测量功能的金刚石尖端所需的膜基底。
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