Light and microwave driven spin current detection in FeGaB thin films

POSTER

Abstract

Measurements of frequency dependent ferromagnetic resonance (FMR), spin pumping driven dc voltage (Vdc) and femtosecond light-pulse-induced terahertz (THz) emission are reported for amorphous films of Fe78Ga13B9 (FeGaB) alloy to address the phenomenon of self-induced inverse spin Hall effect (ISHE) in plain films of metallic ferromagnets. The asymmetric Vdc signal draws contributions from rectification effects of a ≈ 0.4 % anisotropic magnetoresistance and a large (≈ 54 nΩ.m) anomalous Hall resistivity (AHR) [1] of these films which ride over the effect of spin – orbit coupling driven spin-to-charge conversion near the film – substrate interface. The femtosecond light-pulse-induced THz emission experiments reveal a decreasing THz signal with increasing FeGaB thickness. This study will be very useful for fully understanding the spin pumping induced dc voltages in metallic ferromagnets with disordered interfaces and large anomalous Hall effect.

[1] Harder, Michael et al. Physics Reports 661 (2016): 1-59.

*This research at Morgan State is supported by the Air Force Office of Scientific Research, Grant # FA9550-19-1-0082. Terahertz measurements conducted at Delaware were supported by NSF through the University of Delaware Materials Research Science and Engineering Center DMR-2011824.

Presenters

  • Prabesh Bajracharya

    • Morgan State University

Authors

  • Prabesh Bajracharya

    • Morgan State University
  • vinay Sharma

    • Morgan State University
    • morgan state university
  • Weipeng Wu

    • University of Delaware
  • Anthony Johnson

    • Morgan State University
    • morgan state university
  • Matthias Benjamin Jungfleisch

    • University of Delaware
    • Department of Physics and Astronomy, University of Delaware, Newark, DE 19716, United States
  • Ramesh C Budhani

    • Morgan State University
    • morgan state university