IF 17.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Matter Pub Date : 2025-03-17 DOI:10.1016/j.matt.2025.102054
Hang Yang, Yichong Wang, Yongjun Jang, Kevin Shani, Quan Jiao, Michael Peters, Kevin Kit Parker, Joost J. Vlassak
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引用次数: 0

摘要

天然结构材料通常具有从纳米到数百微米等不同尺度的复杂分层结构,因而具有优异的强度、韧性和缺陷敏感性。然而,在工程材料中实现类似的微结构仍然是一项艰巨的挑战。在这项研究中,我们将湿法旋转喷射纺丝(WRJS)系统与脱盐工艺相结合,制造出具有可控结晶度和纤维间界面粘附性的高各向异性纤维状聚乙烯醇(PVA)水凝胶。我们设计的水凝胶模拟了自然界中结构材料的机械特性。由此获得的材料在分子和纤维尺度上都表现出极佳的各向异性排列。通过控制纤维间的粘附力,我们获得了一种比单根纤维和各向同性的大体积 PVA 都更具延展性的紧密材料。总之,这些纤维状水凝胶表现出了与各种天然组织相媲美的机械性能,为软装置和组织工程的应用提供了巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Biomimetic hierarchical fibrous hydrogels with high alignment and flaw insensitivity

Biomimetic hierarchical fibrous hydrogels with high alignment and flaw insensitivity
Natural structural materials often feature intricate hierarchical architectures across various scales, from nanometers to hundreds of microns, resulting in exceptional strength, toughness, and flaw insensitivity. However, achieving similar microstructures in engineering materials remains a formidable challenge. In this study, we combine the wet rotary jet spinning (WRJS) system with a salting-out process to fabricate highly anisotropic fibrous poly(vinyl alcohol) (PVA) hydrogels with controlled crystallinity and interfacial adhesion between fibers. We engineered hydrogels to emulate the mechanical characteristics of structural materials in nature. The resulting materials demonstrate excellent anisotropic alignment at both the molecular and fiber scales. By controlling adhesion between fibers, we obtain a compact material that is more ductile than both of the individual fibers of which it is composed and isotropic bulk PVA. Overall, these fibrous hydrogels exhibit mechanical properties comparable to various natural tissues, offering significant potential for applications in soft devices and tissue engineering.
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来源期刊
Matter
Matter MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
26.30
自引率
2.60%
发文量
367
期刊介绍: Matter, a monthly journal affiliated with Cell, spans the broad field of materials science from nano to macro levels,covering fundamentals to applications. Embracing groundbreaking technologies,it includes full-length research articles,reviews, perspectives,previews, opinions, personnel stories, and general editorial content. Matter aims to be the primary resource for researchers in academia and industry, inspiring the next generation of materials scientists.
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