| Literature DB >> 34047594 |
Qing Yang1,2, Hongwei Zhu3,4, Peng Liu1,2,5, Rui Liu1, Qingfan Shi3, Ke Chen1,2,6, Ning Zheng3, Fangfu Ye1,2,5,6,7, Mingcheng Yang1,2,6.
Abstract
The discovery of topological edge states that unidirectionally propagate along the boundary of system without backscattering has enabled the development of new design principles for material or information transport. Here, we show that the topological edge flow supported by the chiral active fluid composed of spinners can even robustly transport an immersed intruder with the aid of the spinner-mediated depletion interaction between the intruder and boundary. Importantly, the effective interaction significantly depends on the dissipationless odd viscosity of the chiral active fluid, which originates from the spinning-induced breaking of time-reversal and parity symmetries, rendering the transport controllable. Our findings propose a novel avenue for robust cargo transport and could open a range of new possibilities throughout biological and microfluidic systems.Year: 2021 PMID: 34047594 DOI: 10.1103/PhysRevLett.126.198001
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161