High-order Harmonic Generation and its Unconventional Scaling Law in the Mott-insulating
arXiv:2106.15478 · doi:10.1103/PhysRevLett.128.127401
Abstract
Competition and cooperation among orders is at the heart of many-body physics in strongly correlated materials and leads to their rich physical properties. It is crucial to investigate what impact many-body physics has on extreme nonlinear optical phenomena, with the possibility of controlling material properties by light. However, the effect of competing orders and electron-electron correlations on highly nonlinear optical phenomena has not yet been experimentally clarified. Here, we investigated high-order harmonic generation from the Mott-insulating phase of Ca2RuO4. Changing the gap energy in Ca2RuO4 as a function of temperature, we observed a strong enhancement of high order harmonic generation at 50 K, increasing up to several hundred times compared to room temperature. We discovered that this enhancement can be well-reproduced by an empirical scaling law that depends only on the material gap energy and photon emission energy. Such scaling law cannot be explained by a simple two-band model under the single electron approximation. Our results suggest that the highly nonlinear optical response of strongly correlated materials is deeply coupled to their electron-electron correlations and resultant many-body electronic structure.
References in corpus (1)
Cited by in corpus (29)
- Strong laser physics, non-classical light states and quantum information science
- Attosecond magnetization dynamics in non-magnetic materials driven by intense femtosecond lasers
- Anomalous temperature dependence of high-harmonic generation in Mott insulators
- Electron-correlation induced nonclassicallity of light from high-harmonic generation
- Temperature-induced dephasing in high-order harmonic generation from solids
- Excitonic effects on high-harmonic generation in Mott insulators
- Photo-induced nonequilibrium states in Mott insulators
- Doping and gap-size dependence of high-harmonic generation in graphene : Importance of consistent formulation of light-matter coupling
- High-order nonlinear terahertz probing of the two-band superconductor MgB: Third- and fifth-order harmonic generation
- Doping effects in high-harmonic generation from correlated systems
- Band nonlinearity-enabled manipulation of Dirac nodes, Weyl cones, and valleytronics with intense linearly polarized light
- Mapping light-dressed Floquet bands by highly nonlinear optical excitations and valley polarization
- High-Harmonic Generation with a twist: all-optical characterization of magic-angle twisted bilayer graphene
- Energy-band echoes: Time-reversed light emission from optically driven quasiparticle wavepackets
- High harmonic generation from electrons moving in topological spin textures
- High-harmonic generation in graphene under the application of a DC electric current: From perturbative to nonperturbative regimes
- Optics-less beam control of EUV high harmonics generated from solids
- An explicit formula for high-order sideband polarization by extreme tailoring of Feynman path integrals
- Strong terahertz third-harmonic generation by kinetic heavy quasiparticles in CaRuO
- Nonlinear Edelstein Effect in Strongly Correlated Electron Systems
- Many-body effects on high-harmonic generation in Hubbard ladders
- Efficient Control of High Harmonic Generation in Carbon Nanotubes using the Aharonov-Bohm Effect
- Theory for Fourier-limited attosecond pulse generation in solids
- Dominant role of charge ordering on high harmonic generation in Pr_{0.6}Ca_{0.4}MnO_{3}
- Unconventional gap dependence of high harmonic generation in the extremely strong light-matter coupling regime
- Terahertz harmonic generation across the Mott insulator-metal transition
- High-harmonic generation in the Rice-Mele model: Role of intraband current originating from interband transition
- Revealing the anisotropic charge-density-wave order of TiSe through high harmonic generation
- Tracking doublon-holon dynamics in high-harmonic generation from Mott insulators