Optimizing spin-based terahertz emission from magnetic heterostructures
arXiv:2601.22797 · doi:10.1103/dzc6-ndlr
Abstract
Terahertz radiation pulses can be generated efficiently through femtosecond laser excitation of a ferromagnetic/nonmagnetic heterostructure, wherein an ultrafast laser-induced spin current results in an electromagnetic THz pulse due to spin-charge conversion. It is, however, still poorly understood how the THz emission amplitude and its bandwidth can be optimized. Here, we perform a systematic analysis of the THz emission from various magnetic heterostructures. The dynamics of the spin current is described by the semiclassical, superdiffusive spin-transport model and the energy dependence of the spin Hall effect of hot electrons is taken into account, leading to emission profiles for Co(2 nm)/Pt(4 nm) bilayer in good agreement with experiment. To identify the optimal {conditions} for THz emission, {we study} the properties of the emitted THz wave profile by systematically varying the layer thicknesses of metallic bilayers, their interfacial spin-current transmission properties, their materials' dependence, and influence of the pump laser-pulse width, allowing us to give optimization guidelines. We find that thin nonmagnetic layer thicknesses of 5-6 nm provide the largest bandwidth in the case of Co/Pt and that the peak frequency of the THz emission depends only on the geometry of the emitter and not on the laser pulse width. The THz bandwidth {is conversely found to} depend on several factors such as exciting laser pulse width, layers' thicknesses, and interface transmission-reflection properties, with the limitation that an increase in the bandwidth by tuning the interface properties comes with a trade-off in the energy efficiency of the emitter. Lastly, we propose a double pulse excitation protocol of a trilayer system that could provide broadband THz emission with a large bandwidth. {Our results contribute to establishing guidelines for optimizing spintronic THz generation.
References in corpus (34)
- Enhanced Gilbert Damping in Thin Ferromagnetic Films
- Efficient metallic spintronic emitters of ultrabroadband terahertz radiation
- Super-Diffusive Spin-Transport as a Mechanism of Ultrafast Demagnetization
- Engineering ultrafast spin currents and terahertz transients by magnetic heterostructures
- Ultrafast transport of laser-excited spin polarized carriers in Au/Fe/MgO(001)
- Femtosecond control of electric currents at the interfaces of metallic ferromagnetic heterostructures
- Broadband terahertz generation via the interface inverse Rashba-Edelstein effect
- Magneto-Optical Detection of the Spin Hall Effect in Pt and W Thin Films
- Spintronic Sources of Ultrashort Terahertz Electromagnetic Pulses
- Terahertz spectroscopy for all-optical spintronic characterization of the spin-Hall-effect metals Pt, W and CuIr
- Femtosecond spin current pulses generated by the non-thermal spin-dependent Seebeck effect and interacting with ferromagnets in spin valves
- Ultrafast spin-currents and charge conversion at 3d-5d interfaces probed by time-domain terahertz spectroscopy
- Efficient Terahertz Generation Using Fe/Pt Spintronic Emitters Pumped at Different Wavelengths
- Principles of spintronic THz emitters
- Separation of ultrafast spin currents and spin-flip scattering in Co/Cu(001) driven by femtosecond laser excitation via the complex MOKE
- Revealing the role of orbital magnetism in ultrafast laser-induced demagnetization in multisublattice metallic magnets by terahertz spectroscopy
- THz emission from Co/Pt bilayers with varied roughness, crystal structure, and interface intermixing
- Particle-in-cell simulation of ultrafast hot-carrier transport in Fe/Au-heterostructures
- Interface reflectivity of a superdiffusive spin current in ultrafast demagnetization and THz emission
- - model for local and nonlocal spin dynamics in laser-excited magnetic heterostructures
- Simulation of Hot-Carrier Dynamics and Terahertz Emission in Laser-Excited Metallic Bilayers
- Probing optical spin-currents using THz spin-waves in noncollinear magnetic bilayers
- High-frequency magnon excitation due to femtosecond spin-transfer torques
- Spintronic THz emitters based on transition metals and semi-metals/Pt multilayers
- Transport theory for femtosecond laser-induced spin-transfer torques
- Origins of electromagnetic radiation from spintronic terahertz emitters: A time-dependent density functional theory plus Jefimenko equations approach
- Accessing ultrafast spin-transport dynamics in copper using broadband terahertz spectroscopy
- Maximizing the electromagnetic efficiency of spintronic terahertz emitters
- Element resolved evidence of superdiffusive terahertz spin current arising from ultrafast demagnetization process
- Charge and spin current pumping by ultrafast demagnetization dynamics
- Spin accumulation and dissipation excited by an ultrafast laser pulse
- Spin-polarized hot electron transport versus spin pumping mediated by local heating
- Quasiparticle dynamics in ferromagnetic compounds of the Co-Fe and Ni-Fe systems
- Theory of superdiffusive spin transport in noncollinear magnetic multilayers