Applied Physics Letters, volume 126, issue 8

Elegant high-order harmonic vortices generation

C. Granados 1
Bikash Das 2, 3, 4
Wenlong Gao 1
M. F. Ciappina 2, 3, 4
1
 
Eastern Institute of Technology 1 , Ningbo 315200,
2
 
Department of Physics, Guangdong Technion-Israel Institute of Technology 2 , 241 Daxue Rd., Shantou 515063,
3
 
Department of Physics, Technion-Israel Institute of Technology 3 , Haifa 32000,
4
 
Guangdong Provincial Key Laboratory of Materials and Technologies for Energy Conversion 4 , 241 Daxue Rd., Shantou 515063,
Publication typeJournal Article
Publication date2025-02-24
scimago Q1
SJR0.976
CiteScore6.4
Impact factor3.5
ISSN00036951, 10773118
Abstract

High-order harmonic generation is a cornerstone of attosecond science, with applications spanning from spectroscopy to the creation of ultrashort light pulses with temporal duration falling in the attosecond regime. In addition, light beams carrying orbital angular momentum (OAM) allow studies of light–matter interactions mediated by OAM couplings. In this work, we present an alternative approach to generating high-order harmonic vortices using elegant Laguerre–Gaussian (eLG) beams. We examine the spatiotemporal characteristics of these harmonic vortices in the far-field regime and demonstrate how the low divergence of eLG beams makes them suitable for producing extreme ultraviolet (XUV) twisted attosecond pulses. Additionally, by solving the far-field Fraunhofer integral, we analyze the influence of azimuthal and radial indices on the spatial profile of vortex beams, thereby exploring the impact of larger topological charges. This study extends the concept of harmonic vortices generated by Laguerre–Gaussian beams to applications beyond the paraxial approximation.

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