Bouchal Petr, Bouchal Zdeněk
Opt Express. 2014 Dec 1;22(24):30200-16. doi: 10.1364/OE.22.030200.
We present a novel technique of digital holography using digitally implemented diffraction-free vortices for a precise three-dimensional (3D) localization of point-like objects. The localization is realized by the processing of the holographic image reconstructed at arbitrarily selected plane. Separating a single radial component of the spatial spectrum and modulating its phase by a virtual spiral mask, the holographic images of individual object points are transformed to the image structures analogous to the diffraction-free vortex beams. The real part of the complex amplitude of the digital vortices creates the shape-invariant patterns rotating due to a defocusing. Determining the angular rotation, the axial positions of the individual point objects are specified over a wide axial range. In the proposed method, a single in-line hologram is processed without phase shifting and multiplane reconstruction, so that a dynamic localization and tracking of particles becomes possible. The principle of the method is presented in a unified computational model valid for both coherent and incoherent techniques of digital holography. The functionality of the method has been verified in experiments of the Fresnel incoherent correlation holography (FINCH) and its flexibility presented by controlled variations of the localization sensitivity. The application potential has been demonstrated by the defocusing image rotation of fixed fluorescent microspheres and the 3D localization and tracking of moving polystyrene beads resulting in the trajectory reconstruction of a selected particle.
我们提出了一种新颖的数字全息技术,该技术使用数字实现的无衍射涡旋来精确三维(3D)定位点状物体。通过处理在任意选定平面上重建的全息图像来实现定位。分离空间频谱的单个径向分量并通过虚拟螺旋掩模调制其相位,各个物体点的全息图像被转换为类似于无衍射涡旋光束的图像结构。数字涡旋复振幅的实部产生由于散焦而旋转的形状不变图案。确定角旋转后,可在较宽的轴向范围内指定各个点物体的轴向位置。在所提出的方法中,无需相移和多平面重建即可处理单个同轴全息图,从而实现对粒子的动态定位和跟踪。该方法的原理在一个统一的计算模型中给出,该模型对数字全息的相干和非相干技术均有效。该方法的功能已在菲涅耳非相干相关全息术(FINCH)实验中得到验证,并通过控制定位灵敏度的变化展示了其灵活性。通过固定荧光微球的散焦图像旋转以及移动聚苯乙烯珠的3D定位和跟踪(从而实现选定粒子的轨迹重建)证明了其应用潜力。