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Nonlocally sensing the magnetic states of nanoscale antiferromagnets with an atomic spin sensor

机译:使用原子自旋传感器非本地感测纳米级反铁磁体的磁态

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The ability to sense the magnetic state of individual magnetic nano-objects is a key capability for powerful applications ranging from readout of ultradense magnetic memory to the measurement of spins in complex structures with nanometer precision. Magnetic nano-objects require extremely sensitive sensors and detection methods. We create an atomic spin sensor consisting of three Fe atoms and show that it can detect nanoscale antiferromagnets through minute, surface-mediated magnetic interaction. Coupling, even to an object with no net spin and having vanishing dipolar stray field, modifies the transition matrix element between two spin states of the Fe atom–based spin sensor that changes the sensor’s spin relaxation time. The sensor can detect nanoscale antiferromagnets at up to a 3-nm distance and achieves an energy resolution of 10 μeV, surpassing the thermal limit of conventional scanning probe spectroscopy. This scheme permits simultaneous sensing of multiple antiferromagnets with a single-spin sensor integrated onto the surface.
机译:感测单个磁性纳米物体的磁性状态的能力是强大的应用程序的一项关键功能,其范围从超密集磁性存储器的读取到以纳米精度测量复杂结构中的自旋。磁性纳米物体需要极其灵敏的传感器和检测方法。我们创建了一个由三个Fe原子组成的原子自旋传感器,并表明它可以通过微小的,表面介导的磁相互作用检测纳米级反铁磁体。偶合甚至没有净自旋并且偶极杂散场消失的物体,也可以修改基于Fe原子的自旋传感器的两个自旋状态之间的过渡矩阵元素,从而改变传感器的自旋弛豫时间。该传感器可以检测最远3纳米距离的纳米级反铁磁体,并实现10μeV的能量分辨率,超过了传统扫描探针光谱法的热极限。该方案允许利用集成在表面上的单旋转传感器同时感测多个反铁磁体。

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