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Main Authors: Xiu, Ziheng, Chai, Yue, Wen, Pengyu, Meng, Chun, Zhong, Min-Cheng, Ren, Yu-Xuan, Song, Daohong, Buljan, Hrvoje, Tang, Liqin, Chen, Zhigang
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2601.01713
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author Xiu, Ziheng
Chai, Yue
Wen, Pengyu
Meng, Chun
Zhong, Min-Cheng
Ren, Yu-Xuan
Song, Daohong
Buljan, Hrvoje
Tang, Liqin
Chen, Zhigang
author_facet Xiu, Ziheng
Chai, Yue
Wen, Pengyu
Meng, Chun
Zhong, Min-Cheng
Ren, Yu-Xuan
Song, Daohong
Buljan, Hrvoje
Tang, Liqin
Chen, Zhigang
contents Optical forces - studied since the earliest days of laser physics - continue to reveal rich dynamics and enable powerful tools for manipulation of objects on micro- and nanoscales, and even individual atoms. Lateral optical forces, which act perpendicular to the direction of beam propagation, are particularly intriguing but have largely been restricted to interface geometries such as air - water boundaries. Here, we realize tunable lateral optical force entirely within a fluid environment by using Janus particles: dielectric microspheres half-coated with gold. We show that the lateral optical force arises from scattering asymmetry induced by the asymmetric structure of the particles; it can be tuned by adjusting the polarization angle of a linearly polarized beam, but also particle parameters including their size and orientation. Experimentally, we directly observe fully reversible lateral propulsion of Janus particles in water merely by rotating the polarization direction, in excellent agreement with theoretical predictions. These results establish a new mechanism for programmable, polarization-controlled optical manipulation, with promising implications for biophotonics, microfluidics, and active soft-matter systems.
format Preprint
id arxiv_https___arxiv_org_abs_2601_01713
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Controllable Lateral Optical Forces on Janus Particles in Fluid Media
Xiu, Ziheng
Chai, Yue
Wen, Pengyu
Meng, Chun
Zhong, Min-Cheng
Ren, Yu-Xuan
Song, Daohong
Buljan, Hrvoje
Tang, Liqin
Chen, Zhigang
Optics
Optical forces - studied since the earliest days of laser physics - continue to reveal rich dynamics and enable powerful tools for manipulation of objects on micro- and nanoscales, and even individual atoms. Lateral optical forces, which act perpendicular to the direction of beam propagation, are particularly intriguing but have largely been restricted to interface geometries such as air - water boundaries. Here, we realize tunable lateral optical force entirely within a fluid environment by using Janus particles: dielectric microspheres half-coated with gold. We show that the lateral optical force arises from scattering asymmetry induced by the asymmetric structure of the particles; it can be tuned by adjusting the polarization angle of a linearly polarized beam, but also particle parameters including their size and orientation. Experimentally, we directly observe fully reversible lateral propulsion of Janus particles in water merely by rotating the polarization direction, in excellent agreement with theoretical predictions. These results establish a new mechanism for programmable, polarization-controlled optical manipulation, with promising implications for biophotonics, microfluidics, and active soft-matter systems.
title Controllable Lateral Optical Forces on Janus Particles in Fluid Media
topic Optics
url https://arxiv.org/abs/2601.01713