论文标题
抗铁磁绝缘子的自旋传输特性的量子传感
Quantum Sensing of Spin Transport Properties of an Antiferromagnetic Insulator
论文作者
论文摘要
抗铁磁绝缘子(AFIS)由于可能开发下一代旋转器设备的潜力而引起了重大兴趣。在这个新兴领域的一项主要努力是利用AFIS进行远程旋转信息通信和存储。在这里,我们报告了一种非侵入性方法,可以通过氮胶囊(NV)量子自旋传感器光学地访问原型AFIα-FE2O3的固有自旋传输特性。通过NV弛豫测量值,我们成功地检测了α-FE2O3的纵向自旋密度的时间依赖性波动。 NV弛豫率的观察到的频率依赖性与理论模型一致,该模型在没有外部自旋偏置的情况下,在实验中测量了α-FE2O3的固有自旋扩散常数。我们的结果突出了NV中心提供的巨大机会,可以在广泛的高频磁性材料中诊断基础旋转运输特性,这是通过更常规的测量技术访问的挑战。
Antiferromagnetic insulators (AFIs) are of significant interest due to their potential to develop next-generation spintronic devices. One major effort in this emerging field is to harness AFIs for long-range spin information communication and storage. Here, we report a non-invasive method to optically access the intrinsic spin transport properties of an archetypical AFI α-Fe2O3 via nitrogen-vacancy (NV) quantum spin sensors. By NV relaxometry measurements, we successfully detect the time-dependent fluctuations of the longitudinal spin density of α-Fe2O3. The observed frequency dependence of the NV relaxation rate is in agreement with a theoretical model, from which an intrinsic spin diffusion constant of α-Fe2O3 is experimentally measured in the absence of external spin biases. Our results highlight the significant opportunity offered by NV centers in diagnosing the underlying spin transport properties in a broad range of high-frequency magnetic materials, which are challenging to access by more conventional measurement techniques.