Steering magnonic dynamics and permeability at exceptional points in a parity-time symmetric waveguide
Xi-guang Wang, Guang-hua Guo, Jamal Berakdar

TL;DR
This paper demonstrates how to control magnetic permeability and magnonic properties in coupled waveguides using spin-orbit torques, exploiting parity-time symmetry at exceptional points for advanced magnetic device functionalities.
Contribution
It introduces a novel method to tune magnetic damping and permeability via PT-symmetric magnonic systems controlled by spin-orbit coupling and external fields.
Findings
Enhanced magnetic damping and permeability control at exceptional points
Observation of nonreciprocal magnon propagation and trapping
Increased sensitivity to magnetic perturbations
Abstract
Tuning the low-energy magnetic dynamics is a key element in designing novel magnetic metamaterials, spintronic devices and magnonic logic circuits. This study uncovers a new, highly effective way of controlling the magnetic permeability via shaping the magnonic properties in coupled magnetic waveguides separated by current carrying spacer with strong spin-orbit coupling. The spin-orbit torques exerted on the waveguides leads to an externally tunable enhancement of magnetic damping in one waveguide and a decreased damping in the other, constituting so a magnetic parity-time (PT) symmetric system with emergent magnetic properties at the verge of the exceptional point where magnetic gains/losses are balanced. In addition to controlling the magnetic permeability, phenomena inherent to PT-symmetric systems are identified, including the control on magnon power oscillations, nonreciprocal…
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