Abstract
This work investigates the longitudinal spin Seebeck effect (LSSE) in ferromagnetic Fe/Pt bilayer systems, examining the role of Fe layer thickness and substrate type on spin current dynamics and signal characteristics. Thin Fe films (3-20 nm) were sputtered onto Si/SiO2 and Si(B) substrates and analyzed for their structural, magnetic, and spin transport behaviors. The study identifies an optimal Fe thickness below 5 nm for effective spin injection, corresponding to a spin diffusion length of 4.7 nm, a spin Hall angle of 0.094, and a spin injection coefficient of −1.6 V (K·Ω·m)-1. Beyond 15 nm, the LSSE signal reverses due to dominant shunting effects. Substrate interactions significantly affect spin scattering, particularly at the Fe/Si(B) interface, where an insulating layer is necessary to stabilize magnetic and spin properties. These results provide insights into optimizing ferromagnetic metal-based LSSE systems for advanced spintronic applications.
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Samransuksamer, B., Wongjom, P., Nachaithong, T., Pongophas, E., Maiaugree, W., Tantiwanichapan, K., … Horprathum, M. (2025). Impact of Fe film thickness and Si(B) substrate on spin current and shunting effects in longitudinal spin Seebeck effect studies. Journal of Physics D: Applied Physics, 58(30). https://doi.org/10.1088/1361-6463/adeaba
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