Department of Chemistry "Giacomo Ciamician", Alma Mater Studiorum - University of Bologna, via F. Selmi 2, 40126 Bologna, Italy.
Department of Industrial Engineering, Alma Mater Studiorum - University of Bologna, via Terracini 28, 40131 Bologna, Italy.
Carbohydr Polym. 2021 Jan 1;251:116984. doi: 10.1016/j.carbpol.2020.116984. Epub 2020 Aug 25.
In this study the multi-scale hierarchical structure of the β-chitin matrix from squid pen of Loligo vulgaris was used as substrate to synthesize new bio-inspired materials. Aiming to mimic the byssus peculiar mechanical properties, we chemically functionalized the β-chitin matrix with catechols, one of the main functional groups of the byssus. The obtained matrix preserved its multi-scale structural organization and was able to chelate reversibly Fe(III). Thus, it behaved as the byssus, acting as a metal cross-linkable matrix that upon metalation increased its Young's modulus, E (>10 times). The functionalized matrix was also cross-linked by oxidation provoking an increase of the E (>10 times) and first failure stress (>5 times). The oxidation of the functionalized matrix followed by metalation slightly increased the material mechanical properties. In conclusion, we added specific bio-functionalities in a natural matrix tuning its mechanical properties without altering its multi-scale organization.
在这项研究中,我们以鱿鱼笔中的β-几丁质基质的多尺度分层结构为基底,合成了新的仿生材料。为了模拟贻贝特殊的机械性能,我们用儿茶酚对β-几丁质基质进行了化学功能化,儿茶酚是贻贝的主要功能基团之一。所得的基质保留了其多尺度结构组织,并且能够可逆螯合 Fe(III)。因此,它的行为类似于贻贝,充当可交联的金属基质,金属化后可使其杨氏模量 E(增加 10 倍以上)。通过氧化交联功能化的基质,E(增加 10 倍以上)和首次失效应力(增加 5 倍以上)也会增加。氧化功能化的基质,随后金属化,略微增加了材料的机械性能。总之,我们在天然基质中添加了特定的生物功能,在不改变其多尺度组织的情况下调整其机械性能。