English

Reversible vertical positioning of acoustically levitated particle using a spiral reflector

Applied Physics 2026-01-09 v1

Abstract

Dynamic positioning in acoustic levitation typically depends on active control of the transducers phases, which necessitates complex driving electronics. While mechanically actuated reflectors offer a simpler alternative, achieving reversible transport along the vertical axis solely through mechanical actuation remains challenging. Here, we demonstrate vertical particle translation using a rotating spiral reflector with a half-wavelength pitch. With the rotation axis laterally offset relative to the acoustic focus, the spiral surface functions as a series of translating slopes. Experimental and numerical results confirm stable, bidirectional transport, yielding a vertical displacement of approximately 0.58λ0.58\lambda per revolution and a maximum height of 3.18λ3.18\lambda, with radial confinement maintained within 0.24λ0.24\lambda. This approach provides a cost-effective solution for non-contact sample handling without active phase control.

Keywords

Cite

@article{arxiv.2601.04595,
  title  = {Reversible vertical positioning of acoustically levitated particle using a spiral reflector},
  author = {Yusuke Koroyasu and Takayuki Hoshi and Yoshiki Nagatani and Daichi Tagami and Yoichi Ochiai and Tatsuki Fushimi},
  journal= {arXiv preprint arXiv:2601.04595},
  year   = {2026}
}
R2 v1 2026-07-01T08:55:32.438Z