TY - JOUR
T1 - Electric-Field Control of Spin and Orbital Hall Effects in a Nodal-Ring Heterostructure Independent of Spin-Orbit Coupling
AU - Wang, Zhikuan
AU - Tan, Wei
AU - Wang, Jianfeng
AU - Jiang, Zeyu
AU - Huang, Bing
N1 - Publisher Copyright:
© 2026 Chinese Physical Society and IOP Publishing Ltd. All rights, including for text and data mining, AI training, and similar technologies, are reserved.
PY - 2026/4
Y1 - 2026/4
N2 - The spin Hall effect (SHE) and the emerging orbital Hall effect (OHE) offer promising pathways for energy-efficient spintronic and orbitronic devices. However, achieving direct, continuous, and efficient electric-field control of spin and orbital Hall conductivities remains a significant challenge, as conventional approaches relying on modulation of Rashba spin–orbit coupling (SOC) face inherent limitations. Here, we propose hetero-nodal-ring (HNR) semimetals as a platform for effective electric-field tuning of both SHE and OHE. We demonstrate that the spin and orbital Berry curvatures of HNR exhibit distinct and sensitive responses to an external electric field, governed by the orbital characteristics of Bloch states and the tunable diameter of the HNR. This mechanism operates independently of SOC strength, enabling efficient and continuous modulation of spin and orbital Hall currents. Our findings provide a novel strategy for developing all-electrically controlled, high-precision spin-orbitronic devices.
AB - The spin Hall effect (SHE) and the emerging orbital Hall effect (OHE) offer promising pathways for energy-efficient spintronic and orbitronic devices. However, achieving direct, continuous, and efficient electric-field control of spin and orbital Hall conductivities remains a significant challenge, as conventional approaches relying on modulation of Rashba spin–orbit coupling (SOC) face inherent limitations. Here, we propose hetero-nodal-ring (HNR) semimetals as a platform for effective electric-field tuning of both SHE and OHE. We demonstrate that the spin and orbital Berry curvatures of HNR exhibit distinct and sensitive responses to an external electric field, governed by the orbital characteristics of Bloch states and the tunable diameter of the HNR. This mechanism operates independently of SOC strength, enabling efficient and continuous modulation of spin and orbital Hall currents. Our findings provide a novel strategy for developing all-electrically controlled, high-precision spin-orbitronic devices.
UR - https://www.scopus.com/pages/publications/105037453822
U2 - 10.1088/0256-307X/43/4/040705
DO - 10.1088/0256-307X/43/4/040705
M3 - 快报
AN - SCOPUS:105037453822
SN - 0256-307X
VL - 43
JO - Chinese Physics Letters
JF - Chinese Physics Letters
IS - 4
ER -