Li Bin, Wang Yong-Lei, Shi Guang, Gao Yangyang, Shi Xinghua, Woodward Clifford E, Forsman Jan
Laboratory of Theoretical and Computational Nanoscience, CAS Key Laboratory for Nanosystem and Hierarchy Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Chinese Academy of Sciences, Beijing 100190, China.
Theoretical Chemistry, Chemical Center, Lund University, P.O. Box 124, S-221 00 Lund, Sweden.
ACS Nano. 2021 Feb 23;15(2):2363-2373. doi: 10.1021/acsnano.0c04095. Epub 2021 Feb 12.
We study systems containing oppositely charged colloidal particles under applied alternating current electric fields (AC fields) using overdamped Langevin dynamics simulations in three dimensions. We obtain jammed bands perpendicular to the field direction under intermediate frequencies and lanes parallel with the field under low frequencies. These structures also depend upon the particle charges. The pathway for generating jammed bands follows a stepwise mechanism, and intermediate bands are observed during lane formation in some systems. We investigate the component of the pressure tensors in the direction parallel to the field and observe that the jammed to lane transition occurs at a critical value for this pressure. We also find that the stable steady states appear to satisfy the principle of maximum entropy production. Our results may help to improve the understand of the underlying mechanisms for these types of dynamic phase transitions and the subsequent cooperative assemblies of colloidal particles under such non-equilibrium conditions.
我们使用三维过阻尼朗之万动力学模拟,研究了在施加的交变电场(AC场)下包含带相反电荷胶体粒子的系统。在中频下,我们获得了垂直于场方向的堵塞带,在低频下获得了与场平行的条带。这些结构也取决于粒子电荷。产生堵塞带的途径遵循逐步机制,并且在某些系统的条带形成过程中观察到中间带。我们研究了压力张量在平行于场方向上的分量,并观察到堵塞到条带的转变发生在该压力的临界值处。我们还发现稳定的稳态似乎满足最大熵产生原理。我们的结果可能有助于增进对这类动态相变的潜在机制以及在这种非平衡条件下胶体粒子随后的协同组装的理解。