TY - JOUR
T1 - Orbit-induced localized spin angular momentum in strong focusing of optical vectorial vortex beams
AU - Li, Manman
AU - Cai, Yanan
AU - Yan, Shaohui
AU - Liang, Yansheng
AU - Zhang, Peng
AU - Yao, Baoli
N1 - Publisher Copyright:
© 2018 American Physical Society.
PY - 2018/5/29
Y1 - 2018/5/29
N2 - Light beams may carry optical spin or orbital angular momentum, or both. The spin and orbital parts manifest themselves by the ellipticity of the state of polarization and the vortex structure of phase of light beams, separately. Optical spin and orbit interaction, arising from the interaction between the polarization and the spatial structure of light beams, has attracted enormous interest recently. The optical spin-to-orbital angular momentum conversion under strong focusing is well known, while the converse process, orbital-to-spin conversion, has not been reported so far. In this paper, we predict in theory that the orbital angular momentum can induce a localized spin angular momentum in strong focusing of a spin-free azimuthal polarization vortex beam. This localized longitudinal spin of the focused field can drive the trapped particle to spin around its own axis. This investigation provides a new degree of freedom for spinning particles by using a vortex phase, which may have considerable potentials in optical spin and orbit interaction, light-beam shaping, or optical manipulation.
AB - Light beams may carry optical spin or orbital angular momentum, or both. The spin and orbital parts manifest themselves by the ellipticity of the state of polarization and the vortex structure of phase of light beams, separately. Optical spin and orbit interaction, arising from the interaction between the polarization and the spatial structure of light beams, has attracted enormous interest recently. The optical spin-to-orbital angular momentum conversion under strong focusing is well known, while the converse process, orbital-to-spin conversion, has not been reported so far. In this paper, we predict in theory that the orbital angular momentum can induce a localized spin angular momentum in strong focusing of a spin-free azimuthal polarization vortex beam. This localized longitudinal spin of the focused field can drive the trapped particle to spin around its own axis. This investigation provides a new degree of freedom for spinning particles by using a vortex phase, which may have considerable potentials in optical spin and orbit interaction, light-beam shaping, or optical manipulation.
UR - https://www.scopus.com/pages/publications/85047776245
U2 - 10.1103/PhysRevA.97.053842
DO - 10.1103/PhysRevA.97.053842
M3 - 文章
AN - SCOPUS:85047776245
SN - 2469-9926
VL - 97
JO - Physical Review A
JF - Physical Review A
IS - 5
M1 - 053842
ER -