Inferring the absolute time constant of spherical wind wave packets – Nature Physics

  • Olarte, OE, Andilla, J., Gualda, EJ & Loza-Alvarez, P. Light-sheet microscopy: a study. Adv. Select. Photonics 10111–179 (2018).

    Article ADS Google Scholar

  • Nwaneshiudu, A. et al. Introduction to confocal microscopy. J. Invest. Dermatol. 1321–5 (2012).

    Article Google Scholar

  • Harilal, SS, Freeman, JR, Diwakar, PK & Hassanein, A. Femtosecond laser ablation: fundamentals and applications. Springer Ser. Select. Sci. 182143-166 (2014).

    Google Scholar

  • Cerami, L., Mazur, E., Nolte, S. & Schaffer, CB Femtosecond laser micromachining. Ultrafast Nonlinear Optics 287321 (2013).

    Google Scholar

  • Chen, Y. & Liu, JT Characterizing the beam conduction and distortion of Gaussian and Bessel beams focused in cells with microscopic heterogeneities. Biomed. Select. Express 61318–1330 (2015).

    Article Google Scholar

  • Duocastella, M. & Arnold, CB Bessel and annular beams for material processing. A laser photon. Pastor. 6607–621 (2012).

    Article ADS Google Scholar

  • Ring, JD et al. Focusing and self-healing of Pearcey beams. Select. Express 2018955–18966 (2012).

    Article ADS Google Scholar

  • Efremidis, NK & Christodoulides, DN Sudden focused waves. Select. Lett. 354045–4047 (2010).

    Article ADS Google Scholar

  • Balazs, NL & Berry, MV Unpublished wave packets. Am. J. Phys. 47264–267 (1979).

    Article ADS Google Scholar

  • Siviloglou, GA et al. Note the acceleration of Airy beams. Phys. Pastor Lett. 99213901 (2007).

    Article ADS Google Scholar

  • Abdollahpour, D. et al. Spatiotemporal Airy light bullets in different regimes. Phys. Pastor Lett. 105253901 (2010).

    Article ADS Google Scholar

  • Papazoglou, DG and others. Automatic autofocusing frequency control. Select. Lett. 361842–1844 (2011).

    Article ADS Google Scholar

  • Panagiotopoulos, P. et al. Plasma-assisted nonlinear collapse of ring-Airy wave packets. Phys. Pastor A 93033808 (2016).

    Article ADS Google Scholar

  • Zhang, P. et al. Trapping and guiding microparticles with morphing autofocusing Airy beams. Select. Lett. 362883–2885 (2011).

    Article ADS Google Scholar

  • Panagiotopoulos, P. et al. Ring-Airy spheres that are sharply focused become infinite spheres of light. Nat. Normal. 42622 (2013).

    Article ADS Google Scholar

  • Koulouklidis, AD et al. Phase memories that preserve harmonics from suddenly disturbed fields. Phys. Pastor Lett. 119223901 (2017).

    Article ADS Google Scholar

  • Chong, A. et al. Generating spatiotemporal optical vortices with controllable transverse orbital angular momentum. Nat. Photon. 14350–354 (2020).

    Article ADS Google Scholar

  • Cao, Q. et al. Non-dispersive Bessel spatiotemporal optical vortices. Sci. Bull. 67133–140 (2022).

    Article Google Scholar

  • Wan, C. et al. Toroidal vortices of light. Nat. Photon. 16519–522 (2022).

    Article ADS Google Scholar

  • Cao, Q. et al. Propagation of transverse photonic orbital angular momentum in a low-mode fiber. Adv. Photon. 5036002 (2023).

    Article ADS Google Scholar

  • Liu, X. and others. Spatiotemporal optical vortices with controllable radial and azimuthal quantum numbers. Nat. Normal. 155435 (2024).

    Article ADS Google Scholar

  • Gao, X. et al. One-time dynamics for second harmonic spatiotemporal optical vortices. Adv. Photon. Nexus 4036003 (2025).

    Article Google Scholar

  • Fan, H. et al. Perfect spatiotemporal optical vortices. Photonics Res. 131776–1782 (2025).

    Article Google Scholar

  • Cao, Q. et al. Spatiotemporal Hologram. Nat. Normal. 157821 (2024).

    Article ADS Google Scholar

  • Chen, W. et al. Processing spatiotemporal wave packets in two-dimensional time series. Nat. Normal. 162818 (2025).

    Article ADS Google Scholar

  • Wu, B. et al. Single fast waves shaped in spatiotemporal images. A laser photon. Pastor. 192402238 (2025).

    Article ADS Google Scholar

  • Teng, H. et al. Construction of optical spatiotemporal skyrmions. Light Sci. Appl. 14324 (2025).

    Article ADS Google Scholar

  • Cao, Q. et al. A spatiotemporal photonic emulator of the non-probabilistic Schrödinger equation. Light 517 (2025).

    Article Google Scholar

  • Liu, X. and others. Rapid bursts of spatiotemporal vortex pulses. Light Sci. Appl. 14361 (2025).

    Article ADS Google Scholar

  • Chen, W. et al. Observation of chiral symmetry bursting in toroidal waves of light. Phys. Pastor Lett. 132153801 (2024).

    Article ADS Google Scholar

  • Hossack, W., Darling, A. & Dahdouh, A. Integrate transformations with computer-generated multiple features. J. Mod. Select. 341235–1250 (1987).

    Article ADS Google Scholar

  • Huo, P. et al. Observation of spatiotemporal optical vortices enabled by a symmetry-breaking slanted nanograting. Nat. Normal. 153055 (2024).

    Article ADS Google Scholar

  • Zhang, RY et al. Mass-spatiotemporal vortex correspondence in zero-index gyromagnetic media. Nature 6411142–1148 (2025).

    Article ADS Google Scholar

  • Yan, X. et al. Optical and photoacoustic dual-modality imaging guided synergistic photodynamic/photothermal therapies. Nanoscale 72520–2526 (2015).

    Article ADS Google Scholar

  • Papazoglou, DG, Suntsov, S., Abdollahpour, D. & Tzortzakis, S. Tunable intense Airy beams and tailored femtosecond laser filaments. Phys. Pastor A 81061807 (2010).

    Article ADS Google Scholar

  • Wen, YH et al. Spiral transformation for high resolution and efficient sorting of optical vortex systems. Phys. Pastor Lett. 120193904 (2018).

    Article ADS Google Scholar

  • Li, H., Bazarov, IV, Dunham, BM & Wise, FW Three-dimensional laser pulse intensity diagnostics for photoinjectors. Phys. Pastor Accel. Rays 14112802 (2011).

    Article ADS Google Scholar

  • Chen, J. et al. A close-loop system for three-dimensional spatiotemporal optical vortex modeling. First. Phys. 931 (2021).

    Article Google Scholar

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