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Switchable optical trapping of Mie-resonant phase-change nanoparticles

Optics 2024-11-22 v2

Abstract

Optical tweezers revolutionized the manipulation of nanoscale objects. Typically, tunable manipulations of optical tweezers rely on adjusting either the trapping laser beams or the optical environment surrounding the nanoparticles. We present a novel approach to achieve tunable and switchable trapping using nanoparticles made of a phase-change material (vanadium dioxide or VO2_2). By varying the intensity of the trapping beam, we induce transitions of the VO2_2 between monoclinic and rutile phases. Depending on the nanoparticles' sizes, they exhibit one of three behaviours: small nanoparticles (in our settings, radius <0.12<0.12 wavelength λ\lambda) remain always attracted by the laser beam in both material phases, large nanoparticles (>0.22λ>0.22 \lambda) remain always repelled. However, within the size range of 0.120.12-0.22λ0.22 \lambda, the phase transition of the VO2_2 switches optical forces between attractive and repulsive, thereby pulling/pushing them towards/away from the beam centre. The effect is reversible, allowing the same particle to be attracted and repelled repeatedly. The phenomenon is governed by Mie resonances supported by the nanoparticle and their alterations during the phase transition of the VO2_2. This work provides an alternative solution for dynamic optical tweezers and paves a way to new possibilities, including optical sorting, light-driven optomechanics and single-molecule biophysics.

Keywords

Cite

@article{arxiv.2402.08947,
  title  = {Switchable optical trapping of Mie-resonant phase-change nanoparticles},
  author = {Libang Mao and Ivan Toftul and Sivacarendran Balendhran and Mohammad Taha and Yuri Kivshar and Sergey Kruk},
  journal= {arXiv preprint arXiv:2402.08947},
  year   = {2024}
}

Comments

11 pages, 5 figures