Arrested rotation of plasmonic optical matter driven by chiral light

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SPIE

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Plasmonic optical matter (OM), composed of optically bound metallic nanoparticles, can be driven into stable rotation by harvesting the spin angular momentum (SAM) of chiral light. This study demonstrates a reversible rotational jamming transition in assemblies of 400nm gold nanoparticles confined within a focused, circularly polarized laser beam. While assemblies with well-defined hexagonal symmetry efficiently convert SAM into orbital motion, breaking symmetry leads to a loss of rotation. We corroborate our results with numerical simulations. These results establish structural symmetry as a primary control parameter for angular-momentum dissipation in driven micromechanical systems. Our findings offer a unique platform for studying universal kinetic arrest and provide a framework for developing reconfigurable light-driven micromachines and soft robotics.

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Proceedings SPIE 14076, Nanophotonics XI.

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