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仿生纳米颗粒水凝胶的异常多尺度力学

Unusual multiscale mechanics of biomimetic nanoparticle hydrogels.

作者信息

Zhou Yunlong, Damasceno Pablo F, Somashekar Bagganahalli S, Engel Michael, Tian Falin, Zhu Jian, Huang Rui, Johnson Kyle, McIntyre Carl, Sun Kai, Yang Ming, Green Peter F, Ramamoorthy Ayyalusamy, Glotzer Sharon C, Kotov Nicholas A

机构信息

School of Biomedical Engineering, School of Ophthalmology and Optometry and Eye Hospital, Wenzhou Medical University, Wenzhou, Zhejiang, 325011, China.

Wenzhou Institute of Biomaterials and Engineering, Chinese Academy of Sciences, Wenzhou, 325000, China.

出版信息

Nat Commun. 2018 Jan 12;9(1):181. doi: 10.1038/s41467-017-02579-w.

Abstract

Viscoelastic properties are central for gels and other materials. Simultaneously, high storage and loss moduli are difficult to attain due to their contrarian requirements to chemical structure. Biomimetic inorganic nanoparticles offer a promising toolbox for multiscale engineering of gel mechanics, but a conceptual framework for their molecular, nanoscale, mesoscale, and microscale engineering as viscoelastic materials is absent. Here we show nanoparticle gels with simultaneously high storage and loss moduli from CdTe nanoparticles. Viscoelastic figure of merit reaches 1.83 MPa exceeding that of comparable gels by 100-1000 times for glutathione-stabilized nanoparticles. The gels made from the smallest nanoparticles display the highest stiffness, which was attributed to the drastic change of GSH configurations when nanoparticles decrease in size. A computational model accounting for the difference in nanoparticle interactions for variable GSH configurations describes the unusual trends of nanoparticle gel viscoelasticity. These observations are generalizable to other NP gels interconnected by supramolecular interactions and lead to materials with high-load bearing abilities and energy dissipation needed for multiple technologies.

摘要

粘弹性特性对于凝胶和其他材料至关重要。同时,由于对化学结构的相反要求,很难同时获得高储能模量和高损耗模量。仿生无机纳米颗粒为凝胶力学的多尺度工程提供了一个很有前景的工具箱,但缺乏将其作为粘弹性材料进行分子、纳米尺度、介观尺度和微观尺度工程的概念框架。在此,我们展示了由碲化镉纳米颗粒制成的同时具有高储能模量和高损耗模量的纳米颗粒凝胶。对于谷胱甘肽稳定的纳米颗粒,粘弹性品质因数达到1.83兆帕,比同类凝胶高出100至1000倍。由最小的纳米颗粒制成的凝胶表现出最高的刚度,这归因于纳米颗粒尺寸减小时谷胱甘肽构型的剧烈变化。一个考虑了可变谷胱甘肽构型下纳米颗粒相互作用差异的计算模型描述了纳米颗粒凝胶粘弹性的异常趋势。这些观察结果可推广到通过超分子相互作用相互连接的其他纳米颗粒凝胶,并导致具有多种技术所需的高承载能力和能量耗散的材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a5a9/5766503/4883e84edac3/41467_2017_2579_Fig1_HTML.jpg

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