Transport of closed ring containing chiral active particles under transversal temperature difference

IF 0.8 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY Acta Physica Sinica Pub Date : 2023-01-01 DOI:10.7498/aps.72.20221772
Jing-Jing Liao, Qi Kang, Fei Luo, Fu-Jun Lin
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Abstract

Active matter is a new and challenging field of physics. Chiral active particle experiences a constant torque and performs circular motion due to the self-propulsion force not aligning with the propulsion direction. Recently, most of studies of the active particle systems focused on constant temperature, but did not take into consideration the constraints by the barriers. In our work, the rectification of a ring containing chiral active particles with transversal temperature difference is numerically investigated in a two-dimensional periodic channel. It is found that the ring powered by chiral active particles can be rectified by the transversal temperature difference and the direction of the transport is determined by the chirality of active particles. The average velocity is a peaked function of angular velocity, the temperature of the lower wall or temperature difference. The transport behaviors of the ring containing one chiral active particle is qualitatively different from those of the ring containing several particles. Especially, the ring radius can strongly affect the transport behaviors. For the ring containing one chiral active particle, the interaction between the particle and the ring facilitates the rectification of the ring when the circular trajectory radius of the chiral particle is large. The average velocity decreases with the increase of the ring radius because the propelling force to the ring by the particle is small. When the circular trajectory radius is small, the interaction between the particle and the ring suppresses the transport. The speed increases as the ring radius increases because the directional transport comes from the difference in temperature between the upper wall and the lower wall. For the ring containing several particles, the interaction between particles reduces the rectification of the ring. The average velocity increases with the increase of the ring radius due to the interaction between particles decreasing. Remarkably, the velocity of the ring decreases as the particle number increases when the ring radius is small, but is a peaked function when the ring radius is not small. Our results offer new possibilities for manipulating an active particle flow on a microscale, and can be applied practically to propelling carriers and motors by a bath of bacteria or artificial microswimmers, such as hybrid micro-device engineering, drug delivery, micro-fluidics, and lab-on-chip technology.
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含手性活性粒子闭环在横向温差下的输运
活性物质是物理学中一个具有挑战性的新领域。由于自推进力与推进方向不一致,手性主动粒子受到恒定的力矩并进行圆周运动。目前对活性粒子体系的研究大多集中在恒温上,而没有考虑势垒的约束。本文研究了二维周期通道中具有横向温差的手性活性粒子环的整流问题。研究发现,手性活性粒子驱动的环可以通过横向温差进行整流,其输运方向由活性粒子的手性决定。平均速度是角速度、下壁温度或温差的峰值函数。含有一个手性活性粒子的环的输运行为与含有多个手性活性粒子的环的输运行为有质的区别。特别是环半径对输运行为有很大的影响。对于含有一个手性活性粒子的环,当手性粒子的圆轨迹半径较大时,粒子与环之间的相互作用有利于环的纠正。由于粒子对环的推进力较小,平均速度随环半径的增大而减小。当圆轨道半径较小时,粒子与环的相互作用抑制了输运。速度随环半径的增大而增大,这是由于定向输运来自上下壁面的温差。对于含有多个粒子的环,粒子间的相互作用降低了环的整流。由于粒子间相互作用的减小,平均速度随环半径的增大而增大。值得注意的是,当环半径较小时,环的速度随粒子数的增加而减小,但当环半径较大时,环的速度为峰值函数。我们的研究结果为在微尺度上操纵主动粒子流提供了新的可能性,并且可以实际应用于通过细菌浴或人工微游泳者来推动载体和马达,例如混合微设备工程,药物输送,微流体和芯片实验室技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Acta Physica Sinica
Acta Physica Sinica 物理-物理:综合
CiteScore
1.70
自引率
30.00%
发文量
31245
审稿时长
1.9 months
期刊介绍: Acta Physica Sinica (Acta Phys. Sin.) is supervised by Chinese Academy of Sciences and sponsored by Chinese Physical Society and Institute of Physics, Chinese Academy of Sciences. Published by Chinese Physical Society and launched in 1933, it is a semimonthly journal with about 40 articles per issue. It publishes original and top quality research papers, rapid communications and reviews in all branches of physics in Chinese. Acta Phys. Sin. enjoys high reputation among Chinese physics journals and plays a key role in bridging China and rest of the world in physics research. Specific areas of interest include: Condensed matter and materials physics; Atomic, molecular, and optical physics; Statistical, nonlinear, and soft matter physics; Plasma physics; Interdisciplinary physics.
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