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水的流动性在丝质水响应致动中的作用。

The role of water mobility on water-responsive actuation of silk.

机构信息

Advanced Science Research Center (ASRC) at the Graduate Center, The City University of New York, 85 St. Nicholas Terrace, New York, NY, 10031, USA.

Department of Chemical Engineering, The City College of New York, 275 Convent Ave, New York, NY, 10031, USA.

出版信息

Nat Commun. 2024 Sep 27;15(1):8287. doi: 10.1038/s41467-024-52715-6.

Abstract

Biological water-responsive materials that deform with changes in relative humidity have recently demonstrated record-high actuation energy densities, showing promise as high-performance actuators for various engineering applications. However, there is a lack of theories capable of explaining or predicting the stress generated during water-responsiveness. Here, we show that the nanoscale confinement of water dominates the macroscopic dehydration-induced stress of the regenerated silk fibroin. We modified silk fibroin's secondary structure, which leads to various distributions of bulk-like mobile and tightly bound water populations. Interestingly, despite these structure variations, all silk samples start to exert force when the bound-to-mobile (B/M) ratio of confined water reaches the same level. This critical B/M water ratio suggests a common threshold above which the chemical potential of water instigates the actuation. Our findings serve as guidelines for predicting and engineering silk's WR behavior and suggest the potential of describing the WR behavior of biopolymers through confined water.

摘要

具有生物响应性的水致变形材料,其在相对湿度变化时会发生变形,最近显示出创纪录的高驱动能量密度,有望成为各种工程应用的高性能致动器。然而,目前缺乏能够解释或预测水响应过程中产生的应力的理论。在这里,我们表明水的纳米尺度限制主导了再生丝素蛋白在宏观脱水诱导下的应力。我们改变了丝素蛋白的二级结构,这导致了大量类似体相的可移动和紧密结合的水的不同分布。有趣的是,尽管存在这些结构变化,但当束缚水与可动水的比值(B/M)达到相同水平时,所有丝素样品都开始产生力。这种临界 B/M 水比表明,水的化学势引发驱动的共同阈值。我们的研究结果为预测和工程丝素的 WR 行为提供了指导,并表明通过受限水来描述生物聚合物的 WR 行为的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/45bc/11436739/0b15d69195de/41467_2024_52715_Fig1_HTML.jpg

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