Musigmann Manfred, Jahns Jürgen, Bock Martin, Grunwald Ruediger
Appl Opt. 2014 Nov 1;53(31):7304-11. doi: 10.1364/AO.53.007304.
Wave fields, which are described mathematically by higher order Bessel functions, carry an orbital angular momentum and thus represent particular types of optical vortex beams with helical wavefronts. For the generation of such vortex beams, one may use, for instance, diffractive spiral axicons. Diffraction, however, leads invariably to strong dispersion, which is detrimental for ultrashort pulses since it leads to severe pulse broadening. This pulse broadening can be minimized or reduced completely (at least, in a specific plane of propagation) if the pulses propagate additionally through a medium with normal refractive dispersion. The refractive-diffractive generation of ultrashort vortex pulses was demonstrated earlier for a pulse duration of approximately 8 fs [Opt. Lett.37, 3804 (2012)10.1364/OL.37.003804OPLEDP0146-9592]. Here, we present an analytical description of the generation and propagation of these vortex beams and of the refractive-diffractive compensation of the dispersion.
波场由高阶贝塞尔函数进行数学描述,它携带轨道角动量,因此代表具有螺旋波前的特定类型的光学涡旋光束。例如,为了产生这种涡旋光束,可以使用衍射螺旋轴锥镜。然而,衍射总是会导致强烈的色散,这对超短脉冲是不利的,因为它会导致严重的脉冲展宽。如果脉冲额外通过具有正常折射色散的介质传播,这种脉冲展宽可以最小化或完全消除(至少在特定的传播平面内)。超短涡旋脉冲的折射 - 衍射产生先前已在脉冲持续时间约为8飞秒的情况下得到证明[《光学快报》37, 3804 (2012)10.1364/OL.37.003804OPLEDP0146 - 9592]。在此,我们给出这些涡旋光束的产生和传播以及色散的折射 - 衍射补偿的解析描述。