SearcharxivSearch

arXiv subjects

Zdenek Kaspar

Publications and source records attributed to Zdenek Kaspar.

4 recordsLinked to original sources

Femtosecond photocurrents by the Dresselhaus bulk spin-galvanic effect in an inversion-asymmetric ferromagnet

We study ultrafast photocurrents in thin films of a model ferromagnetic metal with broken bulk inversion symmetry, the half-metallic Heusler compound NiMnSb, following excitation with an optical pump pulse with photon energy 1.55 eV. Remarkably, in terms of the direction of the sample magnetization M, all photocurrents are found to be a superposition of a component with Rashba- and Dresselhaus-type symmetry. We explain the Dresselhaus bulk photocurrent as follows: Pump-induced electron heating induces an excess of spin μ_s||M, which transfers spin angular momentum into states with Dresselhaus-type spin-momentum locking. The resulting charge current relaxes on a time scale of 10 fs by momentum relaxation and, thus, follows μ_s quasi-instantaneously. The relaxation of μ_s is governed by the cooling of the electrons and not by the significantly slower spin-lattice relaxation of half-metals. Our findings add the Dresselhaus spin-galvanic effect (SGE) to the set of ultrafast spin-charge-conversion phenomena. They indicate a route to more efficient spintronic terahertz emitters and detectors based on the volume scaling of the bulk SGE.

cond-mat.mtrl-sci

Broadband High-Performance Terahertz Polarizers by Nanoimprint Lithography for Advanced Applications

Terahertz polarizers are essential for advanced spectroscopic systems but face challenges like low transmission, short bandwidths and low extinction ratios. This study demonstrates the development of ultrabroadband THz polarizers using nanoimprint lithography, achieving high performance through double-wire-grid polarizer (DWGP) structures on cyclic olefin copolymer (COC) substrates. Compared to silicon-based alternatives, the polymer DWGPs demonstrated over twice the TM-polarized transmittance across the 0.1 - 25 THz range. The degree of polarization exceeded 98% in a 0.1-16 THz range, with a maximum extinction ratio above 65.4 dB at 4.2 THz. Simultaneous characterization of materials using THz time-domain spectroscopy (THz-TDS) and Fourier-transform infrared spectroscopy (FTIR) covered extended frequency ranges of 0.1 - 40 THz and 0.9 - 20 THz, respectively. Nanofabricated polymer DWGP revealed the superior optical properties, including enhanced TM transmittance and reduced TE leakage when compared to Si DWGP. Additionally, the fabricated polymer polarizers showcased cost-effectiveness, scalability, and durability, offering a sustainable alternative to conventional Si-based polarizers. The significant developments demonstrated in this study position polymer-based DWGPs as significant components for THz imaging, sensing, and wireless communication systems, paving the way for next-generation technologies.

physics.optics

Fiber-tip spintronic terahertz emitters

Spintronic terahertz emitters promise terahertz sources with an unmatched broad frequency bandwidth that are easy to fabricate and operate, and therefore easy to scale at low cost. However, current experiments and proofs of concept rely on free-space ultrafast pump lasers and rather complex benchtop setups. This contrasts with the requirements of widespread industrial applications, where robust, compact, and safe designs are needed. To meet these requirements, we present a novel fiber-tip spintronic terahertz emitter solution that allows spintronic terahertz systems to be fully fiber-coupled. Using single-mode fiber waveguiding, the newly developed solution naturally leads to a simple and straightforward terahertz near-field imaging system with a 90%-10% knife-edge-response spatial resolution of 30 $μm$.

physics.optics

Manipulating THz Spin Current Dynamics by the Dzyaloshinskii-Moriya Interaction in Antiferromagnetic Hematite

An important vision of modern magnetic research is to use antiferromagnets as controllable and active ultrafast components in spintronic devices. Hematite is a promising model material in this respect because its pronounced Dzyaloshinskii-Moriya interaction leads to the coexistence of antiferromagnetism and weak ferromagnetism. Here, we use femtosecond laser pulses to drive terahertz spin currents from hematite into an adjacent Pt layer. We find two contributions to the generation of the spin current with distinctly different dynamics: the impulsive stimulated Raman scatting that relies on the antiferromagnetic order and the ultrafast spin Seebeck effect that relies on the net magnetization. The total THz spin current dynamics can thus be manipulated by a medium-strength magnetic field. The controllability of the THz spin current achieved in hematite opens the pathway toward controlling the exact spin current dynamics from ultrafast antiferromagnetic spin sources.

cond-mat.mes-hall