Topological linking determines elasticity in limited valence networks

IF 38.5 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Nature Materials Pub Date : 2025-01-31 DOI:10.1038/s41563-024-02091-9
Giorgia Palombo, Simon Weir, Davide Michieletto, Yair Augusto Gutiérrez Fosado
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Abstract

Understanding the relationship between the microscopic structure and topology of a material and its macroscopic properties is a fundamental challenge across a wide range of systems. Here we investigate the viscoelasticity of DNA nanostar hydrogels—a model system for physical networks with limited valence—by coupling rheology measurements, confocal imaging and molecular dynamics simulations. We discover that these networks display a large degree of interpenetration and that loops within the network are topologically linked, forming a percolating network-within-network structure. Below the overlapping concentration, the fraction of branching points and the pore size determine the high-frequency elasticity of these physical gels. At higher concentrations, we discover that this elastic response is dictated by the abundance of topological links between looped motifs in the gel. Our findings highlight the emergence of ‘topological elasticity’ as a previously overlooked mechanism in generic network-forming liquids and gels and inform the design of topologically controllable material behaviours. Experiments and simulations of DNA nanostar hydrogels reveal that microscopic topology determines macroscale elasticity in amorphous networks.

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拓扑联系决定有限价网络的弹性
理解材料的微观结构和拓扑结构与其宏观性质之间的关系是一个跨越广泛系统的基本挑战。在这里,我们通过耦合流变学测量、共聚焦成像和分子动力学模拟来研究DNA纳米星水凝胶的粘弹性——一种具有有限价的物理网络模型系统。我们发现这些网络显示出很大程度的相互渗透,并且网络内的环路在拓扑上是相连的,形成了一个渗透的网络中网络结构。在重叠浓度下,分支点的分数和孔隙大小决定了这些物理凝胶的高频弹性。在较高的浓度下,我们发现这种弹性反应是由凝胶中环状基序之间的拓扑连接的丰度决定的。我们的研究结果强调了“拓扑弹性”的出现,这是以前在一般网络形成液体和凝胶中被忽视的机制,并为拓扑可控材料行为的设计提供了信息。
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来源期刊
Nature Materials
Nature Materials 工程技术-材料科学:综合
CiteScore
62.20
自引率
0.70%
发文量
221
审稿时长
3.2 months
期刊介绍: Nature Materials is a monthly multi-disciplinary journal aimed at bringing together cutting-edge research across the entire spectrum of materials science and engineering. It covers all applied and fundamental aspects of the synthesis/processing, structure/composition, properties, and performance of materials. The journal recognizes that materials research has an increasing impact on classical disciplines such as physics, chemistry, and biology. Additionally, Nature Materials provides a forum for the development of a common identity among materials scientists and encourages interdisciplinary collaboration. It takes an integrated and balanced approach to all areas of materials research, fostering the exchange of ideas between scientists involved in different disciplines. Nature Materials is an invaluable resource for scientists in academia and industry who are active in discovering and developing materials and materials-related concepts. It offers engaging and informative papers of exceptional significance and quality, with the aim of influencing the development of society in the future.
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