Heuke Sandro, Rigneault Hervé
Opt Express. 2021 Feb 1;29(3):3985-3995. doi: 10.1364/OE.414972.
We present and model a dark-field illumination scheme for coherent anti-Stokes Raman scattering (DF-CARS) that highlights the interfaces of an object with chemical sensitivity. The proposed DF-CARS scheme uses dedicated arrangements of the pump k, Stokes k and probe k beams' k-wave-vectors to address the sample's interfaces along the x, y or z axis. The arrangements of the incident k-wave-vectors are derived from the Ewald sphere representation of the outgoing anti-Stokes radiation and the effective CARS excitation wave-vector k = k + k - k under the intention to avoid probing the object frequency K(0,0,0), i.e., the contribution of a homogeneous sample (dark-field configuration). We suggest a possible experimental realization using simple masks placed in the back pupil of the excitation microscope objective lens. Applying a full vectorial model, the proposed experimental implementation is numerically investigated on grounds of the Debye-Wolff integral and dynadic Green function to confirm the predicted chemical interface contrast.
我们提出并模拟了一种用于相干反斯托克斯拉曼散射的暗场照明方案(DF-CARS),该方案以化学敏感性突出物体的界面。所提出的DF-CARS方案使用泵浦k、斯托克斯k和探测k光束的k波矢的专门排列,以沿x、y或z轴探测样品的界面。入射k波矢的排列源自出射反斯托克斯辐射的埃瓦尔德球表示以及有效CARS激发波矢k = k + k - k,目的是避免探测物体频率K(0,0,0),即均匀样品的贡献(暗场配置)。我们建议使用放置在激发显微镜物镜后焦面的简单掩模进行可能的实验实现。应用全矢量模型,基于德拜-沃尔夫积分和并矢格林函数对所提出的实验实现进行了数值研究,以确认预测的化学界面对比度。