Topological materials
How do hot electrons change a Weyl semimetal's direction-dependence?
Open access · cc by · source: Europe PMC
After a laser pulse heats its electrons, the Weyl semimetal TaIrTe4 responds to light more equally in all in-plane directions, the opposite of what happens in black phosphorus.
Study at a glance
- Design
- Other — Ultrafast mid-infrared pump-probe transient reflection spectroscopy on an exfoliated 100 nm TaIrTe4 flake, varying probe/pump polarization, pump power and temperature.
- N
- A single 100 nm thick flake measured under many polarization, power and temperature settings; no sample count applies.
- Population
- Exfoliated flake of the layered type-II Weyl semimetal TaIrTe4 on a SiO2/Si substrate
- Outcome
- Transient reflectivity change, its decay time constants, and the extracted anisotropy of optical conductivity
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Key findings
Relaxation needed three exponential components: about 1.03 ps and 3.95 ps (attributed to cooling via high- and low-energy phonons) and about 14.0 ns (heat flow into the substrate), with the same time constants for every probe polarization. The ratio of equilibrium conductivities along the a and b axes was about 1:0.76. After excitation, conductivity rose along the less-conducting axis and fell along the more-conducting one, so the anisotropy weakened and gradually recovered as carriers cooled. The peak signal scaled linearly with photoexcited carrier density, and the pump's anisotropic absorption, not the pump polarization, set the overall signal size.
Methodology
The authors excited a 100 nm thick flake of TaIrTe4 at room temperature with a short infrared pump pulse and measured the change in reflection of a delayed mid-infrared probe pulse. They rotated the probe and pump polarizations relative to the crystal axes and also varied pump power and sample temperature. They fitted the decay curves with exponential models and converted reflection changes into changes of optical conductivity along the two in-plane axes.
Limitations
All results come from one flake at a single probe photon energy, so it is unknown whether the loss of anisotropy holds at other wavelengths or thicknesses. The authors state that the reason TaIrTe4 becomes more isotropic while black phosphorus becomes less isotropic is unclear, and the conductivity analysis is not valid in the first moments before carriers thermalise. The link between time constants and specific phonon processes is an interpretation of fits rather than a direct measurement, and device performance was not tested.
How this study connects
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