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基于水凝胶的结构可转换和可重构机械超材料及其在生物医学支架中的应用

Structurally Transformable and Reconfigurable Hydrogel-Based Mechanical Metamaterials and Their Application in Biomedical Stents.

作者信息

Pruksawan Sirawit, Teo Rigel Lu Jun, Cheang Yu Hong, Chong Yi Ting, Ng Evelyn Ling Ling, Wang FuKe

机构信息

Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis #08-03, Singapore 138634, Republic of Singapore.

College of Design and Engineering, National University of Singapore (NUS), 15 Kent Ridge Crescent, Singapore 117585, Republic of Singapore.

出版信息

ACS Appl Mater Interfaces. 2025 Jan 15;17(2):4055-4066. doi: 10.1021/acsami.4c20599. Epub 2025 Jan 2.

Abstract

Mechanical metamaterials exhibit several unusual mechanical properties, such as a negative Poisson's ratio, which impart additional capabilities to materials. Recently, hydrogels have emerged as exceptional candidates for fabricating mechanical metamaterials that offer enhanced functionality and expanded applications due to their unique responsive characteristics. However, the adaptability of these metamaterials remains constrained and underutilized, as they lack integration of the hydrogels' soft and responsive characteristics with the metamaterial design. Here, we propose structurally transformable and reconfigurable hydrogel-based mechanical metamaterials through three-dimensional (3D) printing of lattice structures composed of multishape-memory poly(acrylic acid)-chitosan hydrogels. By incorporating reversible shape-memory mechanisms that control the structural arrangements of the lattice, these metamaterials can exhibit transformable and reconfigurable mechanical characteristics under various environmental conditions, including auxetic behavior, with Poisson's ratios switchable from negative to zero or positive. These adaptable mechanical responses across different states arise from structural changes in lattice, surpassing the gradual changes observed in conventional stimuli-responsive materials. The application of these metamaterials in multimode biomedical stents demonstrates their adaptability in practical settings, allowing them to transition between expandable, nonexpandable, and shrinkable states, with corresponding Poisson's ratios. By integrating multishape-memory soft materials with metamaterial design, we can significantly enhance their functionality, advancing the development of smart biomaterials.

摘要

机械超材料具有多种不同寻常的力学性能,例如负泊松比,这些性能赋予了材料额外的功能。近年来,水凝胶已成为制造机械超材料的优异候选材料,由于其独特的响应特性,这类超材料具有增强的功能和更广泛的应用。然而,这些超材料的适应性仍然受到限制且未得到充分利用,因为它们缺乏将水凝胶的柔软性和响应特性与超材料设计相结合。在此,我们通过三维(3D)打印由多形状记忆聚(丙烯酸)-壳聚糖水凝胶组成的晶格结构,提出了结构可转换和可重构的水凝胶基机械超材料。通过纳入控制晶格结构排列的可逆形状记忆机制,这些超材料在各种环境条件下可呈现可转换和可重构的力学特性,包括负泊松比的拉胀行为,其泊松比可从负切换为零或正。这些在不同状态下的适应性力学响应源于晶格的结构变化,超越了传统刺激响应材料中观察到的渐进变化。这些超材料在多模式生物医学支架中的应用证明了它们在实际环境中的适应性,使其能够在可扩张、不可扩张和可收缩状态之间转换,并具有相应的泊松比。通过将多形状记忆软材料与超材料设计相结合,我们可以显著增强其功能,推动智能生物材料的发展。

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