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Magnetic resonance imaging of spin-wave transport and interference in a magnetic insulator

机译:旋转波传输的磁共振成像和磁绝缘子干扰

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Spin waves—the elementary excitations of magnetic materials—are prime candidate signal carriers for low-dissipation information processing. Being able to image coherent spin-wave transport is crucial for developing interference-based spin-wave devices. We introduce magnetic resonance imaging of the microwave magnetic stray fields that are generated by spin waves as a new approach for imaging coherent spin-wave transport. We realize this approach using a dense layer of electronic sensor spins in a diamond chip, which combines the ability to detect small magnetic fields with a sensitivity to their polarization. Focusing on a thin-film magnetic insulator, we quantify spin-wave amplitudes, visualize spin-wave dispersion and interference, and demonstrate time-domain measurements of spin-wave packets. We theoretically explain the observed anisotropic spin-wave patterns in terms of chiral spin-wave excitation and stray-field coupling to the sensor spins. Our results pave the way for probing spin waves in atomically thin magnets, even when embedded between opaque materials.
机译:旋转波 - 磁性材料的基本激发 - 是用于低耗散信息处理的主要候选信号载体。能够图像相干旋转波传输对于显影基于干扰的旋转波器件至关重要。我们引入了通过旋转波产生的微波磁场场的磁共振成像作为用于成像相干旋转波传输的新方法。我们在钻石芯片中使用致密的电子传感器旋转来实现这种方法,这相结合了检测小磁场的能力,其具有对它们的极化的敏感性。专注于薄膜磁绝缘体,我们量化旋转波振幅,可视化旋转波色散和干扰,并展示旋转波包的时域测量。理论上,理论上,以手性旋转波激励和与传感器旋转的杂散场耦合而言,观察到的各向异性自旋波形图案。我们的结果铺平了探测原子薄磁铁中的旋转波的方法,即使在不透明材料之间嵌入。

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