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由单宁-纤维素纳米纤维实现的金属-酚醛网络泡沫的多功能组装

Versatile Assembly of Metal-Phenolic Network Foams Enabled by Tannin-Cellulose Nanofibers.

作者信息

Mattos Bruno D, Zhu Ya, Tardy Blaise L, Beaumont Marco, Ribeiro Ana Carolina R, Missio André L, Otoni Caio G, Rojas Orlando J

机构信息

Department of Bioproducts and Biosystems, School of Chemical Engineering, Aalto University, Vuorimiehentie 1, FI-00076, Espoo, Finland.

Technological Development Center, Materials Science and Engineering (PPGCEM), Federal University of Pelotas (UFPel), Gomes Carneiro 1, Pelotas, RS, 96010-610, Brazil.

出版信息

Adv Mater. 2023 Mar;35(12):e2209685. doi: 10.1002/adma.202209685. Epub 2023 Feb 12.

Abstract

Metal-phenolic network (MPN) foams are prepared using colloidal suspensions of tannin-containing cellulose nanofibers (CNFs) that are ice-templated and thawed in ethanolic media in the presence of metal nitrates. The MPN facilitates the formation of solid foams by air drying, given the strength and self-supporting nature of the obtained tannin-cellulose nanohybrid structures. The porous characteristics and (dry and wet) compression strength of the foams are rationalized by the development of secondary, cohesive metal-phenolic layers combined with a hydrogen bonding network involving the CNF. The shrinkage of the MPN foams is as low as 6% for samples prepared with 2.5-10% tannic acid (or condensed tannin at 2.5%) with respect to CNF content. The strength of the MPN foams reaches a maximum at 10% tannic acid (using Fe ions), equivalent to a compressive strength 70% higher than that produced with tannin-free CNF foams. Overall, a straightforward framework is introduced to synthesize MPN foams whose physical and mechanical properties are tailored by the presence of tannins as well as the metal ion species that enable the metal-phenolic networking. Depending on the metal ion, the foams are amenable to modification according to the desired application.

摘要

金属-酚醛网络(MPN)泡沫是通过含单宁的纤维素纳米纤维(CNF)的胶体悬浮液制备的,这些悬浮液在金属硝酸盐存在下于乙醇介质中进行冷冻模板化和解冻处理。鉴于所得单宁-纤维素纳米杂化结构的强度和自支撑性质,MPN通过空气干燥促进了固体泡沫的形成。泡沫的多孔特性和(干湿)压缩强度可通过二级粘性金属-酚醛层与涉及CNF的氢键网络的发展来解释。对于相对于CNF含量使用2.5%-10%单宁酸(或2.5%缩合单宁)制备的样品,MPN泡沫的收缩率低至6%。MPN泡沫的强度在10%单宁酸(使用铁离子)时达到最大值,相当于抗压强度比无单宁的CNF泡沫高70%。总体而言,引入了一个简单的框架来合成MPN泡沫,其物理和机械性能可通过单宁的存在以及实现金属-酚醛网络的金属离子种类进行定制。根据金属离子的不同,这些泡沫可根据所需应用进行改性。

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