School of Molecular Science and Engineering, South China University of Technology, Guangzhou, China.
South China Advanced Institute for Soft Matter Science and Technology (AISMST), South China University of Technology, Guangzhou, China.
Nat Commun. 2021 Jul 13;12(1):4277. doi: 10.1038/s41467-021-24663-y.
Many soft tissues are compression-stiffening and extension-softening in response to axial strains, but common hydrogels are either inert (for ideal chains) or tissue-opposite (for semiflexible polymers). Herein, we report a class of astral hydrogels that are structurally distinct from tissues but mechanically tissue-like. Specifically, hierarchical self-assembly of amphiphilic gemini molecules produces radial asters with a common core and divergently growing, semiflexible ribbons; adjacent asters moderately interpenetrate each other via interlacement of their peripheral ribbons to form a gel network. Resembling tissues, the astral gels stiffen in compression and soften in extension with all the experimental data across different gel compositions collapsing onto a single master curve. We put forward a minimal model to reproduce the master curve quantitatively, underlying the determinant role of aster-aster interpenetration. Compression significantly expands the interpenetration region, during which the number of effective crosslinks is increased and the network strengthened, while extension does the opposite. Looking forward, we expect this unique mechanism of interpenetration to provide a fresh perspective for designing and constructing mechanically tissue-like materials.
许多软组织对轴向应变表现出压缩变硬和拉伸变软的特性,但常见的水凝胶要么是惰性的(对于理想的链),要么与组织相反(对于半刚性聚合物)。在这里,我们报告了一类星状水凝胶,它们在结构上与组织不同,但在力学上类似于组织。具体来说,两亲双子分子的分级自组装产生了具有共同核心和发散生长的半刚性带状物的径向星状体;相邻的星状体通过其外围带状物的交织适度地相互穿插,形成凝胶网络。类似于组织,星状凝胶在压缩时变硬,在拉伸时变软,所有不同凝胶组成的实验数据都可以合并到单个主曲线上。我们提出了一个最小模型来定量再现主曲线,揭示了星状体-星状体相互贯穿的决定作用。压缩显著扩大了相互贯穿区域,在此期间增加了有效交联的数量并增强了网络,而拉伸则相反。展望未来,我们期望这种独特的贯穿机制为设计和构建力学类似组织的材料提供新的视角。