3. Physikalisches Institut, Universität Stuttgart and Institute for Integrated Quantum Science and Technology IQST, Pfaffenwaldring 57, 70569 Stuttgart, Germany.
Max Planck Institute for Solid State Research, Heisenbergstraße 1, 70569 Stuttgart, Germany.
Nat Nanotechnol. 2017 Jan;12(1):67-72. doi: 10.1038/nnano.2016.163. Epub 2016 Sep 12.
The generation and control of fast switchable magnetic fields with large gradients on the nanoscale is of fundamental interest in material science and for a wide range of applications. However, it has not yet been possible to characterize those fields at high bandwidth with arbitrary orientations. Here, we measure the magnetic field generated by a hard-disk-drive write head with high spatial resolution and large bandwidth by coherent control of single electron and nuclear spins. We are able to derive field profiles from coherent spin Rabi oscillations close to the gigahertz range, measure magnetic field gradients on the order of 1 mT nm and quantify axial and radial components of a static and dynamic magnetic field independent of its orientation. Our method paves the way for precision measurement of the magnetic fields of nanoscale write heads, which is important for future miniaturization of these devices.
在材料科学和广泛的应用中,纳米尺度上快速、可切换且具有大梯度的磁场的产生和控制具有重要意义。然而,目前还不可能以任意方向对这些磁场进行高带宽特性描述。在这里,我们通过单电子和核自旋的相干控制,以高空间分辨率和大带宽来测量硬盘驱动器写头产生的磁场。我们能够从接近千兆赫兹的相干自旋拉比振荡中得出磁场分布,测量高达 1 mT nm 的磁场梯度,并定量测量静态和动态磁场的轴向和径向分量,而与磁场方向无关。我们的方法为纳米级写头磁场的精密测量铺平了道路,这对于这些设备的未来小型化至关重要。