Cai Li-Heng
Department of Materials Science and Engineering, Department of Chemical Engineering, Department of Biomedical Engineering, School of Engineering and Applied Science, University of Virginia, Wilsdorf Hall 228, 395 McCormick Road, Charlottesville, VA 22904, USA.
Soft Matter. 2020 Jul 21;16(27):6259-6264. doi: 10.1039/d0sm00759e. Epub 2020 Jun 17.
Networks formed by crosslinking bottlebrush polymers are a class of soft materials with stiffnesses matching that of 'watery' hydrogels and biological tissues but contain no solvents. Because of their extreme softness, bottlebrush polymer networks are often subject to large deformations. However, it is poorly understood how molecular architecture determines the extensibility of the networks. Using a combination of experimental and theoretical approaches, we discover that the yield strain γ of the network equals the ratio of the contour length L to the end-to-end distance R of the bottlebrush between two neighboring crosslinks: γ = L/R- 1. This relation suggests two regimes: (1) for stiff bottlebrush polymers, γ is inversely proportional to the network shear modulus G, γ∼G, which represents a previously unrecognized regime; (2) for flexible bottlebrush polymers, γ∼G, which recovers the behavior of conventional polymer networks. Our findings provide a new molecular understanding of the nonlinear mechanics for soft bottlebrush polymer networks.
由交联刷状聚合物形成的网络是一类软材料,其刚度与“水性”水凝胶和生物组织相匹配,但不含溶剂。由于其极度柔软,刷状聚合物网络经常会发生大变形。然而,分子结构如何决定网络的可扩展性却鲜为人知。通过结合实验和理论方法,我们发现网络的屈服应变γ等于相邻两个交联点之间刷状聚合物的轮廓长度L与端到端距离R的比值:γ = L/R - 1。这种关系表明存在两种情况:(1) 对于刚性刷状聚合物,γ与网络剪切模量G成反比,γ∼G,这代表了一种以前未被认识到的情况;(2) 对于柔性刷状聚合物,γ∼G,这恢复了传统聚合物网络的行为。我们的发现为软刷状聚合物网络的非线性力学提供了新的分子理解。