Exploring symmetries in photoelectron holography with two-color linearly polarized fields
arXiv:2203.02487 · doi:10.1088/1361-6455/ac7bbf
Abstract
We investigate photoelectron holography in bichromatic linearly polarized fields of commensurate frequencies and , with emphasis on the existing symmetries and for which values of the relative phase between the two driving waves they are kept or broken. Using group-theoretical methods, we show that, additionally to the well-known half-cycle symmetry, which is broken for odd, there are reflection symmetries around the field zero crossings and maxima, which may or may not be kept, depending on how both waves are dephased. The three symmetries are always present for monochromatic fields, while for bichromatic fields this is not guaranteed, even if is even and the half-cycle symmetry is retained. Breaking the half-cycle symmetry automatically breaks one of the other two, while, if the half-cycle symmetry is retained, the other two symmetries are either \textit{both} kept or broken. We analyze how these features affect the ionization times and saddle-point equations for different bichromatic fields. We also provide general expressions for the relative phases which retain specific symmetries. As an application, we compute photoelectron momentum distributions for fields with the Coulomb Quantum Orbit Strong-Field approximation and assess how holographic structures such as the fan, the spider and interference carpets behave, focusing on the reflection symmetries. The features encountered can be traced back to the field gradient and amplitude affecting ionization probabilities and quantum interference in different momentum regions.
48 pages, 14 figures (including one in the appendix); figures have been included, there has been some restructuring and some discussions have been extended in the revised version
References in corpus (13)
- Strong Field Approximation for Systems with Coulomb Interaction
- Time Double-Slit Interference in Tunneling Ionization
- Laser-sub-cycle two-dimensional electron momentum mapping using orthogonal two-color fields
- Disentangling intra-cycle interferences in photoelectron momentum distributions using orthogonal two-colour laser fields
- Two-Dimensional Attosecond Electron Wave Packet Interferometry
- Quantum and semiclassical phase-space dynamics of a wave packet in strong fields using initial-value representations
- Two-color phase-of-the-phase spectroscopy in the multiphoton regime
- Pulse-shape control of two-color interference in high-order-harmonic generation
- Attosecond pulse production using resonantly-enhanced high-order harmonics
- Atomic photoionization dynamics in ultrashort cycloidal laser fields
- Polarization in Strong-Field Ionization of Excited Helium
- Channel-resolved subcycle interferences of electron wave packets emitted from H in two-color laser fields
- Time Correlation Filtering Reveals Two-Path Electron Quantum Interference in Strong-Field Ionization
Cited by in corpus (4)
- Impact of the continuum Coulomb interaction in quantum-orbit-based treatments of high-order above-threshold ionization
- Detangling the quantum tapestry of intra-channel interference in below-threshold nonsequential double ionization with few-cycle laser pulses
- Physics-informed neural networks for solving saddle-point equations in strong-field physics with tailored fields
- Unravelling inter-channel quantum interference in below-threshold nonsequential double ionization with statistical measures