Twenty-five years ago Allen, Beijersbergen, Spreeuw, and Woerdman published their seminal paper establishing that light beams with helical phase-fronts carried an orbital angular momentum. Previously orbital angular momentum had been associated only with high-order atomic/molecular transitions and hence considered to be a rare occurrence. The realization that every photon in a laser beam could carry an orbital angular momentum that was in excess of the angular momentum associated with photon spin has led both to new understandings of optical effects and various applications. These applications range from optical manipulation, imaging and quantum optics, to optical communications. This brief review will examine some of the research in the field to date and consider what future directions might hold.Published by The Optical Society under the terms of the Creative Commons Attribution 4.0 License. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI.
References and links
J. H. Poynting, "The wave motion of a revolving shaft, and a suggestion as to the angular momentum in a beam of circularly polarised light," Proc. R. Soc. Lond., A Contain. Pap. Math. Phys. Character 82(557), 560-567 (1909). 2. C. G. Darwin, "Notes on the theory of radiation," Proc. R. Soc. Lond., A Contain. Pap. Math. Phys. Character 136(829), 36-52 (1932). 3. L. Allen, M. W. Beijersbergen, R. J. C. Spreeuw, and J. P. Woerdman, "Orbital angular momentum of light and the transformation of Laguerre-Gaussian laser modes," Phys. Rev. A 45(11), 8185-8189 (1992). 4. J. Courtial, K. Dholakia, L. Allen, and M. J. Padgett, "Gaussian beams with very high orbital angular momentum," Opt. Commun. 144(4-6), 210-213 (1997). 5. A. M. Yao and M. J. Padgett, "Orbital angular momentum: origins, behavior and applications," Adv. Opt.Photonics 3(2), 161-204 (2011). 6. M. Padgett, "Light's twist," Proc. Math. Phys. Eng. Sci. 470(2172), 20140633 (2014). 7. C. Tamm, "Frequency locking of two transverse optical modes of a laser," Phys. Rev. A Gen. Phys. 38(11), 5960-5963 (1988). 8. P. Coullet, G. Gil, and F. Rocca, "Optical vortices," Opt. Commun. 73(5), 403-408 (1989). 9. J. F. Nye and M. V. Berry, "Dislocations in wave trains," Proc. R. Soc. Lond. A Math. Phys. Sci. 336(1605), 165-190 (1974). 10. M. V. Berry, J. F. Nye, and F. Wright, "The elliptic umbilic diffraction catastrophe," Philos. Trans. R. Soc.Lond. A 291(1382), 453-484 (1979). 11. M. W. Beijersbergen, L. Allen, H. E. L. O. van der Veen, and J. P. Woerdman, "Astigmatic laser mode converters and transfer of orbital angular momentum," Opt. Commun. 96(1-3), 123-132 (1993). 12. M. W. Beijersbergen, R. P. C. Coerwinkel, M. Kristensen, and J. P. Woerdman, "Helical-wavefront laser beams produced with a spiral phaseplate," Opt. Commun. 112(5-6), 321-327 (1994 Padgett, D. J. Gauthier, and R. W. Boyd, "High-dimensional quantum cryptography with twisted light," New J.