Department of Physics and Atmospheric Science, Dalhousie University, Halifax, Nova Scotia B3H 4R2, Canada.
Soft Matter. 2021 May 19;17(19):5018-5024. doi: 10.1039/d1sm00181g.
We adapt the theory of anisotropic rubber elasticity to model cross-linked double-twist liquid crystal cylinders such as exhibited in biological systems. In mechanical extension we recover strain-straightening, but with an exact expression in the small twist-angle limit. In compression, we observe coexistence between high and low twist phases. Coexistence begins at small compressive strains and is robustly observed for any anisotropic cross-links and for general double-twist functions - but disappears at large twist angles. Within the coexistence region, significant compression of double-twist cylinders is allowed at constant stress. Our results are qualitatively consistent with previous observations of swollen or compressed collagen fibrils, indicating that this phenomenon may be readily accessible experimentally.
我们将各向异性橡胶弹性理论应用于交联双扭曲液晶圆柱的模型,例如生物系统中展示的结构。在机械拉伸中,我们恢复了应变拉伸,但在小扭曲角极限下有一个精确的表达式。在压缩中,我们观察到高低扭曲相的共存。共存始于小的压缩应变,并且对于任何各向异性交联和一般的双扭曲函数都得到了稳健的观察 - 但在大扭曲角下消失。在共存区域内,双扭曲圆柱在恒定应力下可以进行显著的压缩。我们的结果与以前对肿胀或压缩胶原蛋白纤维的观察结果定性一致,表明这种现象在实验上可能很容易实现。