Zhou Yongzhuang, Zammit Paul, Carles Guillem, Harvey Andrew R
Opt Express. 2018 Mar 19;26(6):7563-7577. doi: 10.1364/OE.26.007563.
A new single-aperture 3D particle-localization and tracking technique is presented that demonstrates an increase in depth range by more than an order of magnitude without compromising optical resolution and throughput. We exploit the extended depth range and depth-dependent translation of an Airy-beam PSF for 3D localization over an extended volume in a single snapshot. The technique is applicable to all bright-field and fluorescence modalities for particle localization and tracking, ranging from super-resolution microscopy through to the tracking of fluorescent beads and endogenous particles within cells. We demonstrate and validate its application to real-time 3D velocity imaging of fluid flow in capillaries using fluorescent tracer beads. An axial localization precision of 50 nm was obtained over a depth range of 120μm using a 0.4NA, 20× microscope objective. We believe this to be the highest ratio of axial range-to-precision reported to date.
本文提出了一种新的单孔径三维粒子定位与跟踪技术,该技术在不影响光学分辨率和通量的情况下,将深度范围提高了一个多数量级。我们利用艾里光束点扩散函数(Airy-beam PSF)的扩展深度范围和深度依赖性平移,在单个快照中对扩展体积进行三维定位。该技术适用于所有用于粒子定位和跟踪的明场和荧光模式,范围从超分辨率显微镜到细胞内荧光珠和内源性粒子的跟踪。我们展示并验证了其在使用荧光示踪珠对毛细血管内流体流动进行实时三维速度成像中的应用。使用0.4NA、20倍显微镜物镜,在120μm的深度范围内获得了50nm的轴向定位精度。我们认为这是迄今为止报道的轴向范围与精度的最高比值。