Controlling the spectral rotation of ultrashort vortex pulses

被引:1
|
作者
Liebmann, M. [1 ]
Treffer, A. [1 ]
Bock, M. [1 ]
Wallrabe, U. [2 ]
Grunwald, R. [1 ]
机构
[1] Max Born Inst Nonlinear Opt & Short Pulse Spect, Berlin, Germany
[2] Univ Freiburg, IMTEK Dept Microsyst Engn, Freiburg, Germany
来源
关键词
Orbital angular momentum; vortex beams; femtosecond pulses; beam shaping; structured beams; spiral gratings; spectral Gouy rotation; optical anomalies; rotation control; GOUY ROTATION; BEAMS; ANOMALIES;
D O I
10.1117/12.2543055
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The large bandwidth and high intensity of ultrafast vortex pulses, i.e. pulses with orbital angular momentum (OAM), open new prospects for applications in communication, imaging or nonlinear photonics. In previous experiments, we demonstrated the peculiar spatio-spectral behavior of pulsed polychromatic vortex beams in the vicinity of phase singularities. It was shown that the rotation of characteristic, so-called "spectral eyes" and the spectral dependent Gouy phase are closely connected. For practical applications, a controlled variation of spatio-spectral distributions is required. Here we report on our most recent studies concerning the dependence of time- integrated spectral maps on key optical parameters. It is shown that the speed of rotation of spectral eyes during the propagation is essentially determined by the angular and spectral profiles. This enables to modify the spectral rotation characteristics by applying low-dispersion, adaptive optical components. The performance of reflective liquid-crystal-on silicon spatial light modulators (LCoS-SLMs) is compared to diffractive spiral gratings with variable illumination. Moreover, the generation of wavepackets with a time-dependent orbital angular momentum (self-torque) by superimposing multiple tailored vortex pulses is proposed. This allows for extending the capabilities vortex pulses by defined non-stationary spatio-spectral and topological characteristics.
引用
下载
收藏
页数:7
相关论文
共 50 条
  • [21] Analysis of the form of ultrashort pulses by spectral nonlinear interferometry
    Mazurenko, YT
    Putilin, SÉ
    Pel'menev, AG
    Shekhtman, VN
    OPTICS AND SPECTROSCOPY, 2000, 89 (04) : 612 - 618
  • [22] Direct measurement of spectral phase for ultrashort laser pulses
    Lozovoy, Vadim V.
    Xu, Bingwei
    Coello, Yves
    Dantus, Marcos
    OPTICS EXPRESS, 2008, 16 (02): : 592 - 597
  • [23] Spectral analysis of ultrashort pulses after nonlinear propagation
    Lange, R
    Ripoche, JF
    Franco, M
    Grillon, G
    Prade, B
    Mysyrowicz, A
    SPECTRAL LINE SHAPES, VOL 9 - 13TH ICSLS, 1997, (386): : 169 - 180
  • [24] Analysis of the Form of Ultrashort Pulses by Spectral Nonlinear Interferometry
    Mazurenko Yu.T.
    Putilin S.É.
    Pel'menev A.G.
    Shekhtman V.N.
    Optics and Spectroscopy, 2000, 89 (4) : 612 - 618
  • [25] Controlling semiconductor nanoparticle size distributions with tailored ultrashort pulses
    Hergenroeder, R.
    Miclea, M.
    Hommes, V.
    NANOTECHNOLOGY, 2006, 17 (16) : 4065 - 4071
  • [26] Controlling the photoluminescence of gallium arsenide with trains of ultrashort laser pulses
    Hu, Zhan
    Singha, Sima
    Gordon, Robert J.
    PHYSICAL REVIEW B, 2010, 82 (11):
  • [27] Controlling the photoelectron holography with shaped intense ultrashort laser pulses
    Zhao, Xiaoyun
    Liu, Mingqing
    Jiang, Wei-Chao
    Li, Weidong
    Chen, Jing
    Hao, Xiaolei
    RESULTS IN PHYSICS, 2024, 57
  • [28] Applications of ultrashort shaped pulses in microscopy and for controlling chemical reactions
    Lozovoy, Vadim V.
    Andegeko, Yair
    Zhu, Xin
    Dantus, Marcos
    CHEMICAL PHYSICS, 2008, 350 (1-3) : 118 - 124
  • [29] Generation of ultrashort optical vortex pulses using optical parametric amplification
    Yamane, Keisaku
    Toda, Yasunori
    Morita, Ryuji
    2012 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2012,
  • [30] Control of vortex orientation of ultrashort optical pulses using a spatial chirp
    Porras, Miguel A.
    Jolly, Spencer W.
    OPTICS LETTERS, 2023, 48 (24) : 6448 - 6451