Edge states, pairing, and sorting of motile chiral particles
Abstract
We present experiments on chiral active polar particles, realized as vibrated granular rods, revealing the formation of robust ``skipping orbits'' at hard boundaries. These edge states exhibit a net circulation opposite to the particles' intrinsic rotation and lead to a pronounced accumulation at the boundary, stronger than for their achiral counterparts. The directed nature of these orbits provides a simple yet high-fidelity mechanism for chiral sorting -- even for solitary particles, unlike in T Barois et al., Phys. Rev. Lett. 125 , 238003 (2020). We propose a unified theoretical framework for boundary interactions of both chiral and achiral particles. In this model, an effective outward radial force, proportional to motility and chirality, explains the observed boundary-hugging. Our theory predicts, and our experiments confirm, a transition in the pairing of two particles of the same chirality, from apolar spinners to polar circle walkers, with increasing packing fraction of an ambient medium of beads.
Cite
@article{arxiv.2509.00729,
title = {Edge states, pairing, and sorting of motile chiral particles},
author = {Raushan Kant and Ananyo Maitra and A K Sood and Sriram Ramaswamy},
journal= {arXiv preprint arXiv:2509.00729},
year = {2025}
}
Comments
Additional relevant references and a subsequent revision of the text were added. For supplementary videos, please click on the link below, https://drive.google.com/drive/folders/1PuTIQuzqR6u_lIjDYuCP-1E8b-gvkZzY, and description of movies see supplementary file below, https://drive.google.com/file/d/1Kiz-PjKiAVAH6G5ERE8CsRnCGHbw2LNT/view?usp=sharing