Ultrafast spin-currents and charge conversion at 3d-5d interfaces probed by time-domain terahertz spectroscopy
T. H. Dang, J. Hawecker, E. Rongione, G. Baez Flores, D. Q. To, J. C., Rojas-Sanchez, H. Nong, J. Mangeney, J. Tignon, F. Godel, S. Collin, P., Seneor, M. Bibes, A. Fert, M. Anane, J.-M. George, L. Vila, M., Cosset-Cheneau, D.Dolfi, R. Lebrun, P. Bortolotti, K. Belashchenko, S.

TL;DR
This paper investigates ultrafast spin-charge conversion at 3d-5d interfaces using time-domain terahertz spectroscopy, revealing how material properties influence spin transmission and THz emission in spintronic devices.
Contribution
It introduces a combined experimental and theoretical approach to analyze ultrafast spin-charge conversion at ferromagnetic-metal interfaces, highlighting the role of interface properties and spin transmission.
Findings
THz spectroscopy correlates with ferromagnetic spin-pumping measurements.
Material resistivities and interface quality affect spin transmission.
Time-domain spectroscopy effectively probes spin dynamics at interfaces.
Abstract
Spintronic structures are extensively investigated for their spin orbit torque properties, required for magnetic commutation functionalities. Current progress in these materials is dependent on the interface engineering for the optimization of spin transmission. Here, we advance the analysis of ultrafast spin-charge conversion phenomena at ferromagnetic-transition metal interfaces due to their inverse spin-Hall effect properties. In particular the intrinsic inverse spin Hall effect of Pt-based systems and extrinsic inverse spin-Hall effect of Au:W and Au:Ta in NiFe/Au:(W,Ta) bilayers are investigated. The spin-charge conversion is probed by complementary techniques -- ultrafast THz time domain spectroscopy in the dynamic regime for THz pulse emission and ferromagnetic resonance spin-pumping measurements in the GHz regime in the steady state -- to determine the role played by the…
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