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Anomalous scaling law of strength and toughness of cellulose nanopaper

机译:纤维素纳米纸强度和韧性的异常缩放定律

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摘要

The quest for both strength and toughness is perpetual in advanced material design; unfortunately, these two mechanical properties are generally mutually exclusive. So far there exists only limited success of attaining both strength and toughness, which often needs material-specific, complicated, or expensive synthesis processes and thus can hardly be applicable to other materials. A general mechanism to address the conflict between strength and toughness still remains elusive. Here we report a first-of-its-kind study of the dependence of strength and toughness of cellulose nanopaper on the size of the constituent cellulose fibers. Surprisingly, we find that both the strength and toughness of cellulose nanopaper increase simultaneously (40 and 130 times, respectively) as the size of the constituent cellulose fibers decreases (from a mean diameter of 27 μm to 11 nm), revealing an anomalous but highly desirable scaling law of the mechanical properties of cellulose nanopaper: the smaller, the stronger and the tougher. Further fundamental mechanistic studies reveal that reduced intrinsic defect size and facile (re)formation of strong hydrogen bonding among cellulose molecular chains is the underlying key to this new scaling law of mechanical properties. These mechanistic findings are generally applicable to other material building blocks, and therefore open up abundant opportunities to use the fundamental bottom-up strategy to design a new class of functional materials that are both strong and tough.
机译:在高级材料设计中,对强度和韧性的追求是永恒的。不幸的是,这两个机械性能通常是互斥的。迄今为止,获得强度和韧性的成功仅有有限的成功,这通常需要特定于材料,复杂或昂贵的合成过程,因此几乎不能应用于其他材料。解决强度和韧性之间冲突的通用机制仍然难以捉摸。在这里,我们首次报道了纤维素纳米纸的强度和韧性对构成纤维素纤维尺寸的依赖性的研究。令人惊讶地,我们发现,随着组成纤维素纤维尺寸的减小(从平均直径27μm到11 nm),纤维素纳米纸的强度和韧性同时增加(分别为40倍和130倍),显示出异常但高度纤维素纳米纸机械性能的理想比例定律:越小,越强壮。进一步的基础力学研究表明,减小的固有缺陷尺寸和纤维素分子链之间易于形成的(牢固的)强氢键是这种新的机械性能定律的根本关键。这些机制的发现通常适用于其他材料构造块,因此为利用基本的自下而上策略设计出既坚固又坚韧的新型功能材料开辟了广阔的机会。

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