Bandyopadhyay Pratul, Basu Banasri, Chowdhury Debashree
Physics and Applied Mathematics Unit, Indian Statistical Institute, 203, Barrackpore Trunk Road, Kolkata 700 108, India.
Phys Rev Lett. 2016 Apr 8;116(14):144801. doi: 10.1103/PhysRevLett.116.144801. Epub 2016 Apr 7.
We have proposed a unified framework towards the dynamics of optical and electron vortex beams from the perspective of the geometric phase and the associated Hall effects. The unification is attributed to the notion that the spin degrees of freedom of a relativistic particle, either massive or massless, are associated with a vortex line. Based on a cylindrical coordinate formulation, which leads to a local vortex structure related to orbital angular momentum (OAM), it can be shown that, when electron vortex beams (EVBs) move in an external electric field, paraxial beams give rise to an OAM Hall effect, and nonparaxial beams with tilted vortices initiate a spin Hall effect in free space as well as in an external field. A similar analysis reveals that the paraxial optical vortex beams (OVBs) in an inhomogeneous medium induce an OAM Hall effect, whereas nonparaxial beams with tilted vortices drive the spin Hall effect. Moreover, both OVBs and EVBs with tilted vortices give rise to OAM states with an arbitrary fractional value.
我们从几何相位和相关霍尔效应的角度,提出了一个关于光学和电子涡旋光束动力学的统一框架。这种统一归因于这样一种观念,即相对论性粒子(无论有质量还是无质量)的自旋自由度与一条涡旋线相关联。基于圆柱坐标公式,该公式会导致与轨道角动量(OAM)相关的局部涡旋结构,可以证明,当电子涡旋光束(EVB)在外部电场中移动时,傍轴光束会产生OAM霍尔效应,而具有倾斜涡旋的非傍轴光束在自由空间以及外部场中都会引发自旋霍尔效应。类似的分析表明,非均匀介质中的傍轴光学涡旋光束(OVB)会诱导OAM霍尔效应,而具有倾斜涡旋的非傍轴光束会驱动自旋霍尔效应。此外,具有倾斜涡旋的OVB和EVB都会产生具有任意分数值的OAM态。