具有极端减振性能的水凝胶的可调网络结构。

IF 9.6 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Communications Materials Pub Date : 2025-01-01 Epub Date: 2025-07-11 DOI:10.1038/s43246-025-00857-5
Graham J Day, Qicheng Zhang, Chrystel D L Remillat, Gianni Comandini, Adam W Perriman, Fabrizio Scarpa
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引用次数: 0

摘要

阻尼技术旨在控制运输应用和建筑中使用的结构和机械中由环境或强迫振动产生的载荷和变形。传统上,用于阻尼装置的材料是化石来源,但粘弹性生物基资源是阻尼材料的替代来源。在这里,我们开发了一种海藻酸盐为基础的水凝胶体系,具有不同的孔隙结构,包括不同浓度的poloxam407作为牺牲孔隙剂。振动传递率测试和动态力学分析表明,在100-300 Hz的频率范围内,这些凝胶的损耗系数在16%到28%之间,与静态模量相比,动态模量增加了一个数量级,达到约3 MPa。可调多孔结构的粘弹性、孔弹性和气动效应显著地促进了这种阻尼效应。此外,这些水凝胶是生物来源和可生物降解的,为传统的化石基阻尼材料提供了一种可持续的替代品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tunable network architecture in a hydrogel with extreme vibration damping properties.

Damping technologies aim to control the loads and deformations generated by ambient or forced vibrations in structures and machineries used in transport applications and construction. Traditionally, the materials used in damping devices are of fossil origin, but viscoelastic biobased resources are an alternative source of damping materials. Here, we develop an alginate-based hydrogel system with diverse porosity topologies by including poloxamer 407 as a sacrificial porogen at varying concentrations. Vibration transmissibility tests and dynamic mechanical analysis reveal these gels exhibit loss factors between 16% and 28% in the 100-300 Hz frequency range and that the dynamic modulus increases over an order of magnitude compared to the static modulus, reaching approximately 3 MPa. The visco- and poroelastic and pneumatic-like effects from the tunable porous structures contribute significantly to this damping effect. Furthermore, these hydrogels are biosourced and biodegradable, providing a sustainable alternative to conventional fossil-based damping materials.

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来源期刊
Communications Materials
Communications Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
12.10
自引率
1.30%
发文量
85
审稿时长
17 weeks
期刊介绍: Communications Materials, a selective open access journal within Nature Portfolio, is dedicated to publishing top-tier research, reviews, and commentary across all facets of materials science. The journal showcases significant advancements in specialized research areas, encompassing both fundamental and applied studies. Serving as an open access option for materials sciences, Communications Materials applies less stringent criteria for impact and significance compared to Nature-branded journals, including Nature Communications.
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