Spin-engineered 3D optical manipulation via polarization-gradient architecturing
Version 2 2025-06-10, 16:52Version 2 2025-06-10, 16:52
Version 1 2025-06-10, 16:52Version 1 2025-06-10, 16:52
Posted on 2025-06-10 - 16:52
Optical manipulation via structured light has emerged as a pivotal technique for advancing laser applications across biological and medical science, and materials engineering. However, conventional optical tweezers research predominantly exploits scalar field quantities(amplitude and phase) for the orbital motion of trapped particles, while the vectorial properties of light fields (i.e., polarization states) are only utilized to drive particle rotation. This work introduces a paradigm shift by demonstrating that the orbital motion of particles can be driven solely through specially configured spatial distributions of polarization states. This polarization-derived dynamical effect is unprecedented. Unlike traditional techniques that rely on global phase gradients, our approach synergizes freestyle 3D intensity sculpting with engineered polarization gradients, enabling flexible and versatile control over microparticle trajectories. Through comprehensive theoretical modeling and experimental validation, we demonstrate the ability to guide microparticles along complex 3D paths, including circular, elliptical, and triangular trajectories. These findings pave new avenues for the development of advanced optical manipulation strategies, facilitating sophisticated microscale assembly and analysis capabilities.
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Yuan, Zheng; Gao, Yuan; Yan, Wenxiang; QING, Zhiming; Ren, Zhi-Cheng; Wang, Xi-Lin; et al. (2025). Spin-engineered 3D optical manipulation via polarization-gradient architecturing. Optica Publishing Group. Collection. https://doi.org/10.6084/m9.figshare.c.7697885.v2