Institute of Physics, University of Amsterdam, Science Park 904, 1098 XH Amsterdam, Netherlands.
van 't Hoff Institute for Molecular Sciences, University of Amsterdam, Science Park 904, 1098 XH Amsterdam, Netherlands.
Phys Rev Lett. 2021 Sep 3;127(10):108001. doi: 10.1103/PhysRevLett.127.108001.
Limited-valency colloidal particles can self-assemble into polymeric structures analogous to molecules. While their structural equilibrium properties have attracted wide attention, insight into their dynamics has proven challenging. Here, we investigate the polymerization dynamics of semiflexible polymers in 2D by direct observation of assembling divalent particles, bonded by critical Casimir forces. The reversible critical Casimir force creates living polymerization conditions with tunable chain dissociation, association, and bending rigidity. We find that unlike dilute polymers that show exponential size distributions in excellent agreement with Flory theory, concentrated samples exhibit arrest of rotational and translational diffusion due to a continuous isotropic-to-nematic transition in 2D, slowing down the growth kinetics. These effects are circumvented by the addition of higher-valency particles, cross linking the polymers into networks. Our results connecting polymer flexibility, polymer interactions, and the peculiar isotropic-nematic transition in 2D offer insight into the polymerization processes of synthetic two-dimensional polymers and biopolymers at membranes and interfaces.
限域价胶体粒子可以自组装成类似于分子的聚合结构。虽然它们的结构平衡性质引起了广泛关注,但对其动力学的洞察却颇具挑战性。在这里,我们通过直接观察由临界 Casimir 力键合的组装二价粒子,在 2D 中研究了半柔性聚合物的聚合动力学。可逆的临界 Casimir 力创造了具有可调链离解、缔合和弯曲刚度的活聚合条件。我们发现,与在 Flory 理论中表现出极好的指数尺寸分布的稀聚合物不同,浓样品由于 2D 中各向同性到向列相的连续转变而表现出旋转和平移扩散的停止,从而减慢了生长动力学。通过添加更高价的粒子来避免这些影响,将聚合物交联成网络。我们的结果将聚合物的灵活性、聚合物的相互作用以及 2D 中独特的各向同性-向列相转变联系起来,为在膜和界面处的二维聚合物和生物聚合物的聚合过程提供了深入的了解。