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Directly photoexcited Dirac and Weyl fermions in ZrSiS and NbAs
Physics
  • Christopher P. Weber, Santa Clara University
  • Leslie M. Schoop
  • Stuart S. P. Parkin
  • Robert C. Newby
  • Alex Nateprov
  • Bettina Lotsch
  • Bala Murali Krishna Mariserla
  • J. Matthew Kim
  • Keshav M. Dani
  • Hans A. Bechtel
  • Ernerst Arushanov
  • Mazhar Ali
Document Type
Article
Publication Date
11-28-2018
Publisher
American Institute of Physics Publishing
Abstract

We report ultrafast optical measurements of the Dirac line-node semimetal ZrSiS and the Weyl semimetal NbAs, using mid-infrared pump photons from 86 meV to 500 meV to directly excite Dirac and Weyl fermions within the linearly dispersing bands. In NbAs, the photoexcited Weyl fermions initially form a non-thermal distribution, signified by a brief spike in the differential reflectivity whose sign is controlled by the relative energy of the pump and probe photons. In ZrSiS, electron-electron scattering rapidly thermalizes the electrons, and the spike is not observed. Subsequently, hot carriers in both materials cool within a few picoseconds. This cooling, as seen in the two materials’ differential reflectivity, differs in sign, shape, and timescale. Nonetheless, we find that it may be described in a simple model of thermal electrons, without free parameters. The electronic cooling in ZrSiS is particularly fast, which may make the material useful for optoelectronic applications.

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Copyright © 2018 American Institute of Physics. Reprinted with permission.

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Citation Information
Weber, C. P., Schoop, L. M., Parkin, S. S. P., Newby, R. C., Nateprov, A., Lotsch, B., … Ali, M. (2018). Directly photoexcited Dirac and Weyl fermions in ZrSiS and NbAs. Applied Physics Letters, 113(22), 221906. https://doi.org/10.1063/1.5055207