Determination of orbital relaxation in Ti/Ni heterostructure via orbital pumping

R Rui Sun Y Yoji Nabei A Aeron McConnell (Department of Physics, North Carolina State University 1 , Raleigh, North Carolina 27695,) X Xiaotong Zhang (College of Chemistry) A Andrew Comstock (Department of Physics, North Carolina State University 1 , Raleigh, North Carolina 27695,) H Hana Jones (Department of Physics, North Carolina State University 1 , Raleigh, North Carolina 27695,) R Rishiram Gyawali (Department of Physics, North Carolina State University 1 , Raleigh, North Carolina 27695,) Y Yuzan Xiong (Department of Physics and Astronomy, University of North Carolina at Chapel Hill 3 , Chapel Hill, North Carolina 27599,) Z Ziqi Wang (Division of Advanced Materials) J Jun Liu W Wei Zhang D Dali Sun

Abstract

Orbital current has attracted significant attention in recent years due to its potential for energy-efficient magnetization control without the need for materials with strong spin–orbit coupling. However, the fundamental mechanisms governing orbital transport remain elusive. In this study, we systematically explore orbital transport in Ti/Ni bilayers through orbital pumping, drawing an analogy to spin pumping. The orbital current is generated and injected into the Ti layer via the microwave-driven orbital dynamics in Ni, facilitated by its strong spin–orbit correlation. We employed thickness-dependent ferromagnetic resonance measurements and angular-dependent inverse orbital Hall effect (IOHE) detection to probe orbital transport in Ti based on the conventional spin-pumping methodology. The observed enhancement in the damping factor indicates an orbital-diffusion length of ∼5.3 ± 3.7 nm, while IOHE-based estimation suggests a value of around 4.0 ± 1.2 nm, which confirms its short orbital-diffusion length. Furthermore, oblique Hanle measurements in the longitudinal configuration reveal an orbital relaxation time of approximately 16 ps. Our results establish that orbital pumping, analogous to the conventional spin-pumping framework, can serve as a robust technique for elucidating orbital transport mechanisms, paving the way for the design of efficient spin-orbitronic devices.

Article Details

Volume / Issue Vol. 138, Issue 12
Published September 28, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (12)

R

Rui Sun

Y

Yoji Nabei

A

Aeron McConnell

Department of Physics, North Carolina State University 1 , Raleigh, North Carolina 27695,

X

Xiaotong Zhang

College of Chemistry

A

Andrew Comstock

Department of Physics, North Carolina State University 1 , Raleigh, North Carolina 27695,

H

Hana Jones

Department of Physics, North Carolina State University 1 , Raleigh, North Carolina 27695,

R

Rishiram Gyawali

Department of Physics, North Carolina State University 1 , Raleigh, North Carolina 27695,

Y

Yuzan Xiong

Department of Physics and Astronomy, University of North Carolina at Chapel Hill 3 , Chapel Hill, North Carolina 27599,

Z

Ziqi Wang

Division of Advanced Materials

J

Jun Liu

W

Wei Zhang

D

Dali Sun