A patterned liquid-crystal spin-orbit device achieves 1.76 ms and 0.72 ms bidirectional electrical switching of optical skyrmions at ~403 Hz and demonstrates image encoding.
Incoherent light delivers skyrmionic topological resilience and transitions
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abstract
Optical skyrmions has recently unlocked topological quasiparticle textures of light, rising in prominence for next-generation ultra-robust information processing. However, to date, their study hasbeen mainly confined to coherent laser fields. Here we extend skyrmions to much general light sources of partially coherent, stochastic optical fields. We define stochastic optical skyrmions and uncover a hidden regime where spatial coherence acts as a primary determinant of topological stability. While environmental randomness typically degrades fully coherent states, we demonstrate that engineered partial coherence provides a self-healing mechanism that preserves topology under extreme turbulence. Moreover, we show that the coherence structure can be actively tailored to trigger on-demand topological phase transitions, such as skyrmion-to-skyrmionium conversion and skyrmion lattice splitting. These findings redefine the boundaries of topological photonics, paving the way for resilient and high-fidelity information platforms that remain operational in general, non-ideal, real-world environments.
fields
physics.optics 1years
2026 1verdicts
UNVERDICTED 1representative citing papers
citing papers explorer
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High-speed electrically driven liquid-crystal compact optical skyrmion encoder
A patterned liquid-crystal spin-orbit device achieves 1.76 ms and 0.72 ms bidirectional electrical switching of optical skyrmions at ~403 Hz and demonstrates image encoding.