Wang Shuo, Chen Yi, Zhou Xuemao, Lei Lijie, Shah Zameer Hussain, Lin Guanhua, Gao Yongxiang
Institute for Advanced Study, Shenzhen University, Nanhai Avenue 3688, Nanshan District, Shenzhen 518060, China.
Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
Langmuir. 2021 Feb 2;37(4):1429-1437. doi: 10.1021/acs.langmuir.0c02891. Epub 2021 Jan 19.
We investigated experimentally and theoretically the interactions and assembly of rodlike colloids in a ferrofluid confined at solid/liquid interface by the gravity under external magnetic fields. We first derived analytical expressions for the interaction energy of a single rod with the external magnetic field and the interaction between two rods using classical electromagnetism. The theory well captured the experimentally observed alignment of a single rod along the field direction under an in-plane field and switching between the horizontal and the vertical configurations in an out-of-plane field due to the competition between the magnetic energy and the gravitational energy. The theory can also predict the symmetric position fluctuations of a free rod on a fixed one at 90° and the gradual bias toward the end of the fixed rod as the angle was reduced to 0°, favoring the tip-toe arrangement. Finally, we showed that this anisotropic interaction led to the formation of chain-like structures, whose growth kinetics followed a simple scaling behavior with time. This work provides a theoretical framework for understanding the behaviors of rodlike colloids in ferrofluids and highlights the importance of shape anisotropy in manipulating colloids and their self-assembly.
我们通过实验和理论研究了在外加磁场作用下,受重力作用限制在固液界面的铁磁流体中棒状胶体的相互作用和组装。我们首先使用经典电磁学推导了单个棒与外加磁场的相互作用能以及两根棒之间相互作用的解析表达式。该理论很好地解释了实验中观察到的在面内磁场下单根棒沿场方向排列,以及在面外磁场中由于磁能和重力能之间的竞争导致的水平和垂直构型之间的切换。该理论还可以预测自由棒在固定棒上90°时的对称位置波动,以及随着角度减小到0°时向固定棒末端的逐渐偏向,有利于脚尖排列。最后,我们表明这种各向异性相互作用导致了链状结构的形成,其生长动力学随时间遵循简单的标度行为。这项工作为理解铁磁流体中棒状胶体的行为提供了一个理论框架,并突出了形状各向异性在操纵胶体及其自组装中的重要性。