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Symmetry-enforced phase state communication in chiral magnonics

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Baydas, O. T.

Dong, H.

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eng

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Abstract

Wireless and injection-locked communication systems encode information via carrier-wave modulation, treating oscillator phase as a tunable variable. We develop a communication model for a near-field transceiver that instead exploits symmetry-enforced phase synchronization between collective magnetic eigenmodes. A chiral helimagnetic transmitter and an off-resonant ferromagnetic receiver are coupled through dipolar interactions. A vectorial signal model and channel description formalize the competing helimagnon and parasitic drive fields. Information is encoded in the excited collective mode and decoded, within a phase-stable operating region, via discrete receiver phase states. A phasor simulation grounded in experimentally measured parameters maps the achievable symbol rate landscape, quantifying synchronization robustness. Collective mode symmetry is thereby identified as a novel information-bearing degree of freedom.

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IEEE

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IEEE Communications Letters

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10.1109/lcomm.2026.3709218

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