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首页> 外文期刊>Journal of Physics Communications >Optical Bessel beam illumination of a subwavelength prolate gold (Au) spheroid coated by a layer of plasmonic material: radiation force, spin and orbital torques
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Optical Bessel beam illumination of a subwavelength prolate gold (Au) spheroid coated by a layer of plasmonic material: radiation force, spin and orbital torques

机译:贝司子光束的光学贝塞尔光束照明,表面覆盖一层等离激元材料:辐射力,自旋和轨道转矩

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The optical radiation force, spin and orbital torques exerted on a subwavelength prolate gold spheroid coated by a layer of plasmonic material with negative permittivity and illuminated by either a zerothorder (non-vortex) or a first-order vector Bessel (vortex) beam are computed in the framework of the electric dipole approximation method. Calculations for the Cartesian components of the optical radiation force on a subwavelength spheroid with arbitrary orientation in space are performed, with emphasis on the order (or topological charge), half-cone angle of the beam, and the plasmonic layer thickness on- and off-resonance. A repulsive (pushing) force is predicted for the layered subwavelength prolate spheroid, on- and off-resonance along the direction of wave propagation. Moreover, the Cartesian components of the spin radiation torque are computed where a negative longitudinal spin torque component can arise, suggesting a rotational twist of the spheroid around its center of mass in either the counter-clockwise or the clockwise (negative) direction of spinning. In addition, the longitudinal component of the orbital radiation torque exhibits sign reversal, indicating a revolution around the beam axis in either the counter-clockwise or the clockwise directions. The results show that the plasmonic resonance strongly alters the force, spin and orbital torque components, causing major amplitude enhancements, signs twists, and complex distributions in the transverse plane.
机译:计算施加在亚波长扁长金球体上的光学辐射力,自旋和轨道转矩,该球体由一层负介电常数的等离激子材料覆盖,并被零阶(非涡旋)或一阶矢量贝塞尔(涡旋)光束照射在电偶极近似方法的框架中。在空间上具有任意方向的亚波长球体上,对光辐射力的笛卡尔分量进行计算,重点是光束的阶次(或拓扑电荷),半锥角以及等离激元层厚度的开和关-谐振。预测了分层的亚波长扁长球体的排斥力(推动力),沿波传播方向的共振和共振。此外,在可能产生负的纵向自旋扭矩分量的地方计算自旋辐射扭矩的笛卡尔分量,这表明球体绕其质心沿旋转的逆时针方向或顺时针(负)方向旋转扭曲。另外,轨道辐射扭矩的纵向分量表现出符号反转,表明绕束轴在逆时针方向或顺时针方向上旋转。结果表明,等离子体共振极大地改变了力,自旋和轨道扭矩分量,从而引起了大幅的幅度增强,符号扭曲以及横向平面中的复杂分布。

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