论文标题
磁绝缘子膜的自旋波动的量子传感,垂直于各向异性
Quantum Sensing of Spin Fluctuations of Magnetic Insulator Films with Perpendicular Anisotropy
论文作者
论文摘要
钻石中的氮空位(NV)中心,光学活跃的原子缺陷已被广泛应用于新兴的量子传感,成像和网络工作,显示了前所未有的场敏感性和纳米级空间分辨率。这些优势中的许多优势来自它们出色的量子固定性,可控制的纠缠和高忠诚的操作,从而使机会超越了经典的同行。利用这种尖端的量子计量学,我们报告了对磁绝缘子薄膜的内在自旋波动的无创测量,并具有自发的平面外磁化。 NV弛豫率的测量场依赖性与磁样品的镁密度和带状结构的变化很好地相关,这是通过常规磁力测定法访问的挑战。我们的结果突出了NV中心在诊断功能磁元素的噪声环境方面提供的重要机会,为设计下一代,高密度和可扩展的Spintronic设备提供了宝贵的信息。
Nitrogen vacancy (NV) centers, optically active atomic defects in diamond, have been widely applied to emerging quantum sensing, imaging, and network efforts, showing unprecedented field sensitivity and nanoscale spatial resolution. Many of these advantages derive from their excellent quantum-coherence, controllable entanglement, and high fidelity of operations, enabling opportunities to outperform the classical counterpart. Exploiting this cutting-edge quantum metrology, we report noninvasive measurement of intrinsic spin fluctuations of magnetic insulator thin films with a spontaneous out-of-plane magnetization. The measured field dependence of NV relaxation rates is well correlated to the variation of magnon density and band structure of the magnetic samples, which are challenging to access by the conventional magnetometry methods. Our results highlight the significant opportunities offered by NV centers in diagnosing the noise environment of functional magnetic elements, providing valuable information to design next-generation, high-density, and scalable spintronic devices.