Keppler Mark A, Steelman Zachary A, Coker Zachary N, Nesládek Miloš, Hemmer Philip R, Yakovlev Vladislav V, Bixler Joel N
Department of Biomedical Engineering, Texas A&M University, College Station, Texas 77843, USA.
SAIC, JBSA Fort Sam Houston, Texas 78234, USA.
Photonics Res. 2022 Sep 1;10(9):2147-2156. doi: 10.1364/PRJ.455634. Epub 2022 Aug 26.
Nitrogen vacancy diamonds have emerged as sensitive solid-state magnetic field sensors capable of producing diffraction limited and sub-diffraction field images. Here, for the first time, to our knowledge, we extend those measurements to high-speed imaging, which can be readily applied to analyze currents and magnetic field dynamics in circuits on a microscopic scale. To overcome detector acquisition rate limitations, we designed an optical streaking nitrogen vacancy microscope to acquire two-dimensional spatiotemporal kymograms. We demonstrate magnetic field wave imaging with micro-scale spatial extent and ~400 μs temporal resolution. In validating this system, we detected magnetic fields down to 10 μT for 40 Hz magnetic fields using single-shot imaging and captured the spatial transit of an electromagnetic needle at streak rates as high as 110 μm/ms. This design has the capability to be readily extended to full 3D video acquisition by utilizing compressed sensing techniques and a potential for further improvement of spatial resolution, acquisition speed, and sensitivity. The device opens opportunities to many potential applications where transient magnetic events can be isolated to a single spatial axis, such as acquiring spatially propagating action potentials for brain imaging and remotely interrogating integrated circuits.
氮空位金刚石已成为灵敏的固态磁场传感器,能够生成衍射极限和亚衍射场图像。据我们所知,在此我们首次将这些测量扩展到高速成像,其可轻松应用于在微观尺度上分析电路中的电流和磁场动态。为克服探测器采集速率限制,我们设计了一种光学条纹氮空位显微镜来获取二维时空波形图。我们展示了具有微尺度空间范围和约400微秒时间分辨率的磁场波成像。在验证该系统时,我们使用单次成像检测到40赫兹磁场下低至10微特斯拉的磁场,并以高达110微米/毫秒的条纹速率捕捉了电磁针的空间传输。这种设计有能力通过利用压缩传感技术轻松扩展到全三维视频采集,并有可能进一步提高空间分辨率、采集速度和灵敏度。该设备为许多潜在应用带来了机会,在这些应用中,瞬态磁事件可被隔离到单个空间轴,例如获取用于脑成像的空间传播动作电位以及远程询问集成电路。