Study of spin pumping damping and THz emission in CoFe/Ti<i>x</i>W1−<i>x</i> bilayers with various Ti concentrations

Z Zhiyao Jiang (Key Laboratory of Micro and Nano Photonic Structures (MOE), School of Information Science and Technology, Fudan University 1 , Shanghai 200433,) Y Yuqing Zou (Key Laboratory of Micro and Nano Photonic Structures (MOE), School of Information Science and Technology) Z Ziyang Li (Key Laboratory of Micro and Nano Photonic Structures (MOE), School of Information Science and Technology) Y Yiwen Song (State Key Laboratory for Mesoscopic Physics and Frontiers Science Center for Nano-optoelectronics, School of Physics) J Jingying Zhang J Jiali Zhang Q Qingyuan Jin (State Key Laboratory of Precision Spectroscopy) Z Zongzhi Zhang (Key Laboratory of Micro and Nano Photonic Structures (MOE), School of Information Science and Technology)

Abstract

Laser-induced magnetization dynamics and terahertz (THz) emission in CoFe/TixW1−x bilayers with varying Ti concentrations are systematically investigated using the time-resolved magneto-optical Kerr effect and time-domain THz emission spectroscopy. The incorporation of Ti into heavy metal W leads to a significant reduction in spin pumping damping, particularly for Ti concentrations below 50%. Similarly, the THz emission peak amplitude decreases with increasing Ti concentration. Both effects are attributed primarily to the reduced spin current transmittance at the CoFe/TixW1−x interface, caused by the substantially decreased electrical conductivity of the TixW1−x layer. Interestingly, while spin pumping damping continues to decrease, the THz emission amplitude starts to increase at x = 63%, where the THz signal approaches zero due to the opposite spin Hall angles of W and Ti. This behavior underscores the distinct yet correlated mechanisms governing spin pumping damping and THz emission, reflecting their specific dependences on spin current reflection, propagation, dissipation, and spin-to-charge conversion in ferromagnet/nonmagnetic metal bilayer systems. These findings enhance our understanding of ultrafast spin dynamics and spin transport properties, offering valuable insights for advancing the development of miniaturized and high-speed spintronic devices.

Article Details

Volume / Issue Vol. 126, Issue 18
Published May 05, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (8)

Z

Zhiyao Jiang

Key Laboratory of Micro and Nano Photonic Structures (MOE), School of Information Science and Technology, Fudan University 1 , Shanghai 200433,

Y

Yuqing Zou

Key Laboratory of Micro and Nano Photonic Structures (MOE), School of Information Science and Technology

Z

Ziyang Li

Key Laboratory of Micro and Nano Photonic Structures (MOE), School of Information Science and Technology

Y

Yiwen Song

State Key Laboratory for Mesoscopic Physics and Frontiers Science Center for Nano-optoelectronics, School of Physics

J

Jingying Zhang

J

Jiali Zhang

Q

Qingyuan Jin

State Key Laboratory of Precision Spectroscopy

Z

Zongzhi Zhang

Key Laboratory of Micro and Nano Photonic Structures (MOE), School of Information Science and Technology