Effect of Rashba spin-orbit coupling on Faraday rotation in an extended Haldane model
Yuan Fang, Yixiang Wang, Xiaopu Zhang
TLDR
This paper investigates how Rashba spin-orbit coupling influences Faraday rotation in an extended Haldane model, showing its potential for magneto-optical device engineering.
Key contributions
- Systematically investigated Rashba SOC's effect on Faraday rotation in an extended Haldane model.
- Found Faraday rotation angles exceeding 4° in C=2 regions, tunable by Rashba SOC strength.
- Demonstrated a nearly flat Faraday rotation profile with exchange splitting, increasing with Rashba SOC.
- Derived a low-energy effective Hamiltonian, validating the numerical tight-binding calculations.
Why it matters
This research provides a systematic understanding of how Rashba SOC can tune Faraday rotation in topological materials. It offers a promising route for designing and optimizing novel magneto-optical devices. This could lead to advancements in next-generation optical technologies.
Original Abstract
Utilization of Faraday rotation (FR) properties of topological materials offers a promising route toward novel magneto-optical devices. We systematically investigated the effect of Rashba spin-orbit coupling (SOC) on FR spectra in an extended Haldane model, which incorporates Rashba SOC and exchange splitting into the original spinless Haldane framework. Using the Kubo formalism, we calculated the FR spectra across the model's rich topological phase diagram. We found that in the Chern number C=2 region, in the absence of exchange splitting, the FR angle can exceed 4$^\circ$ and its peak position is tunable by the Rashba SOC. In contrast, with the inclusion of exchange splitting, a nearly flat FR profile emerges over a broad frequency range, and the FR peak values increase monotonically with the Rashba SOC strength. The Rashba SOC opens additional transition channels, whose net contribution constructively enhances the FR peak. Furthermore, we derived a low-energy effective Hamiltonian expanded up to quadratic terms, the results of which are in good agreement with tight-binding model calculations, thereby validating our numerical results. Our findings suggest that magneto-optical device characteristics can be designed and optimized through Rashba SOC engineering.
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