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Deciphering the origin of spin current in spintronic terahertz emitters and its imprint on their electromagnetic radiation via time-dependent density functional theory

Ali Kefayati1, Yafei Ren1, M. Benjamin Jungfleisch1, Lars Gundlach1,2, John Q. Xiao1, and Branislav K. Nikolić1,*

  • *Contact author: bnikolic@udel.edu

Phys. Rev. B 111, L140415 – Published 25 April, 2025

DOI: https://doi.org/10.1103/PhysRevB.111.L140415

Abstract

Spin current flowing between femtosecond laser pulse (fsLP) driven ferromagnetic metal and adjacent normal metal (NM) hosting strong spin-orbit coupling is invariably invoked to explain terahertz (THz) radiation believed to be emitted solely by the NM layer. Despite being such a central concept, the microscopic origin of interlayer spin current remains vague. It is also unclear if it directly imprints its time dependence onto emitted THz radiation because far-field radiation can only be emitted by time-dependent charge current, while a potentially large number of complex spin-to-charge conversion mechanisms can obscure direct relation between interlayer spin current and converted charge current within the NM layer. Here, we employ a recently developed [A. Kefayati et al., Phys. Rev. Lett. 133, 136704 (2024)] time-dependent density functional theory plus Jefimenko equations approach to extract spin current between Co and a NM = Pt or NM = W layer, where Co is driven by fsLP responsible for its demagnetization, i.e., shrinking of its magnetization vector, My(t)/My(t=0)<1. By comparing time dependence of spin current with those of other relevant quantities, we find that (i) spin current is generated by demagnetization dynamics because it follows closely dMy/dt, thus it is an example of a quantum pumping phenomenon that cannot be captured by phenomenological notions (such as “spin voltage”) and related semiclassical transport theories; (ii) time dependence of pumped spin current does not follow closely that of charge current emerging within the NM layer via spin-to-charge conversion mechanisms; (iii) THz emission can be governed by charge currents (i.e., its time derivative entering the Jefimenko equations) within both the Co layer and NM layer, but in different times frames. We also unravel a special case of NM = W where spin-to-charge conversion by the inverse spin Hall effect and its contribution to THz emission is suppressed, despite large spin Hall angle of W, because of localization of excited electrons onto the outer unfilled d orbitals of W.

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