Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University, 29 Oxford Street, Cambridge, Massachusetts 02138, USA.
Università Politecnica delle Marche, Via Brecce Bianche 60131 Ancona, Italy.
Phys Rev Lett. 2018 Jun 1;120(22):223901. doi: 10.1103/PhysRevLett.120.223901.
Recently, it was shown that a Mie particle in an evanescent field ought to experience optical forces that depend on the helicity of the totally internally reflected beam. As yet, a direct measurement of such helicity-dependent forces has been elusive, as the widely differing force magnitudes in the three spatial dimensions place stringent demands on a measurement's sensitivity and range. In this study, we report the simultaneous measurement of all components of this polarization-dependent optical force by using a 3D force spectroscopy technique with femtonewton sensitivity. The vector force fields are compared quantitatively with our theoretical calculations as the polarization state of the incident light is varied and show excellent agreement. By plotting the 3D motion of the Mie particle in response to the switched force field, we offer visual evidence of the effect of spin momentum on the Poynting vector of an evanescent optical field.
最近,人们发现处于消逝场中的 Mie 粒子应该会感受到依赖于完全内反射光束的螺旋度的光力。然而,由于三个空间维度中的力大小差异很大,对测量的灵敏度和范围提出了严格的要求,因此,这种依赖于螺旋度的力的直接测量一直难以实现。在这项研究中,我们使用具有 femtonewton 灵敏度的 3D 力谱技术报告了这种偏振相关光力的所有分量的同时测量。当改变入射光的偏振状态时,我们将矢量力场与我们的理论计算进行了定量比较,并且吻合得非常好。通过绘制 Mie 粒子对切换力场的三维运动,我们提供了对自旋动量对消逝光场的 Poynting 矢量的影响的直观证据。