Wang Wei, Lv Xianglong, Moran Jeffrey L, Duan Shifang, Zhou Chao
School of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen, China.
Department of Mechanical Engineering, George Mason University, Fairfax, USA.
Soft Matter. 2020 Apr 29;16(16):3846-3868. doi: 10.1039/d0sm00222d.
Synthetic active colloids that harvest energy stored in the environment and swim autonomously are a popular model system for active matter. This emerging field of research sits at the intersection of materials chemistry, soft matter physics, and engineering, and thus cross-talk among researchers from different backgrounds becomes critical yet difficult. To facilitate this interdisciplinary communication, and to help soft matter physicists with choosing the best model system for their research, we here present a tutorial review article that describes, in appropriate detail, six experimental systems of active colloids commonly found in the physics literature. For each type, we introduce their background, material synthesis and operating mechanisms and notable studies from the soft matter community, and comment on their respective advantages and limitations. In addition, the main features of each type of active colloid are summarized into two useful tables. As materials chemists and engineers, we intend for this article to serve as a practical guide, so those who are not familiar with the experimental aspects of active colloids can make more informed decisions and maximize their creativity.
能够收集存储在环境中的能量并自主游动的合成活性胶体,是活性物质研究中一种常用的模型系统。这个新兴的研究领域处于材料化学、软物质物理和工程学的交叉点,因此不同背景的研究人员之间的交流变得至关重要但又颇具难度。为了促进这种跨学科交流,并帮助软物质物理学家为其研究选择最佳的模型系统,我们在此发表一篇教程综述文章,详细描述了物理文献中常见的六种活性胶体实验系统。对于每种类型,我们介绍其背景、材料合成和运行机制,以及软物质领域的重要研究,并对它们各自的优缺点进行评论。此外,每种活性胶体的主要特征被总结在两个实用的表格中。作为材料化学家和工程师,我们希望本文能成为一份实用指南,以便那些不熟悉活性胶体实验方面的人能够做出更明智的决策,并最大限度地发挥他们的创造力。