Activity-assisted barrier crossing of self-propelled colloids over parallel microgrooves

We report a systematic study of the dynamics of self-propelled particles (SPPs) over a one-dimensional periodic potential landscape U_{0}(x), which is fabricated on a microgroove-patterned polydimethylsiloxane (PDMS) substrate. From the measured nonequilibrium probability density function P(x;F_{0})...

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Veröffentlicht in:Physical review. E 2023-03, Vol.107 (3), p.L032601-L032601, Article L032601
Hauptverfasser: Wen, Yan, Li, Zhihao, Wang, Haiqin, Zheng, Jing, Tang, Jinyao, Lai, Pik-Yin, Xu, Xinpeng, Tong, Penger
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Sprache:eng
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Zusammenfassung:We report a systematic study of the dynamics of self-propelled particles (SPPs) over a one-dimensional periodic potential landscape U_{0}(x), which is fabricated on a microgroove-patterned polydimethylsiloxane (PDMS) substrate. From the measured nonequilibrium probability density function P(x;F_{0}) of the SPPs, we find that the escape dynamics of the slow rotating SPPs across the potential landscape can be described by an effective potential U_{eff}(x;F_{0}), once the self-propulsion force F_{0} is included into the potential under the fixed angle approximation. This work demonstrates that the parallel microgrooves provide a versatile platform for a quantitative understanding of the interplay among the self-propulsion force F_{0}, spatial confinement by U_{0}(x), and thermal noise, as well as its effects on activity-assisted escape dynamics and transport of the SPPs.
ISSN:2470-0045
2470-0053
DOI:10.1103/PhysRevE.107.L032601