Nonlocal Optomechanics: Hybrid Anapole Opens a New Route to Optical Tweezing

Fuente: arXiv
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Main Authors: Rozental, Susanna R., Kislov, Denis A., Fradkin, Ilia M., Babich, Nikita S., Fedotov, Vasiliy, Novikov, Sergey, Bobrovs, Vjaceslavs, Xie, Shangran, Minin, Oleg, Minin, Igor, Gao, Lei, Wu, Yu-Ling, Gong, Lei, Bolshakov, Alexey, Arsenin, Alexey, Shalin, Alexander S.
Format: Preprint
Published: 2026
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author Rozental, Susanna R.
Kislov, Denis A.
Fradkin, Ilia M.
Babich, Nikita S.
Fedotov, Vasiliy
Novikov, Sergey
Bobrovs, Vjaceslavs
Xie, Shangran
Minin, Oleg
Minin, Igor
Gao, Lei
Wu, Yu-Ling
Gong, Lei
Bolshakov, Alexey
Arsenin, Alexey
Shalin, Alexander S.
author_facet Rozental, Susanna R.
Kislov, Denis A.
Fradkin, Ilia M.
Babich, Nikita S.
Fedotov, Vasiliy
Novikov, Sergey
Bobrovs, Vjaceslavs
Xie, Shangran
Minin, Oleg
Minin, Igor
Gao, Lei
Wu, Yu-Ling
Gong, Lei
Bolshakov, Alexey
Arsenin, Alexey
Shalin, Alexander S.
contents Optical tweezers confine a particle in an intensity-defined potential well by engaging its local multipoles. In this picture, eliminating far-field scattering from the particle should cancel the optical force, as the multipole moments underpinning the conventional optomechanical response vanish. We show that certain resonant states, such as, e.g., the hybrid anapole state, enable qualitatively different optical manipulation, nonlocal by nature, where the optical force exhibits nontrivial spatial variations absent in conventional tweezing, establishing a new framework for manipulating resonant nanoparticles.
format Preprint
id arxiv_https___arxiv_org_abs_2603_25301
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Nonlocal Optomechanics: Hybrid Anapole Opens a New Route to Optical Tweezing
Rozental, Susanna R.
Kislov, Denis A.
Fradkin, Ilia M.
Babich, Nikita S.
Fedotov, Vasiliy
Novikov, Sergey
Bobrovs, Vjaceslavs
Xie, Shangran
Minin, Oleg
Minin, Igor
Gao, Lei
Wu, Yu-Ling
Gong, Lei
Bolshakov, Alexey
Arsenin, Alexey
Shalin, Alexander S.
Optics
Optical tweezers confine a particle in an intensity-defined potential well by engaging its local multipoles. In this picture, eliminating far-field scattering from the particle should cancel the optical force, as the multipole moments underpinning the conventional optomechanical response vanish. We show that certain resonant states, such as, e.g., the hybrid anapole state, enable qualitatively different optical manipulation, nonlocal by nature, where the optical force exhibits nontrivial spatial variations absent in conventional tweezing, establishing a new framework for manipulating resonant nanoparticles.
title Nonlocal Optomechanics: Hybrid Anapole Opens a New Route to Optical Tweezing
topic Optics
url https://arxiv.org/abs/2603.25301