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采用生物衍生超支化交联剂制备的坚固、高孔隙率且可持续的纳米纤维素泡沫,用于隔热和吸音。

Strong, highly porous and sustainable nanocellulose foam made using bioderived hyperbranched crosslinker for thermal insulation and sound absorption.

作者信息

Kumar Bijender, Pham Duc H, Kim Jaehwan

机构信息

Creative Research Center for Nanocellulose Future Composites, Department of Mechanical Engineering, Inha University, 100 Inha-ro, Michuhol-ku, Incheon 22212, South Korea.

Creative Research Center for Nanocellulose Future Composites, Department of Mechanical Engineering, Inha University, 100 Inha-ro, Michuhol-ku, Incheon 22212, South Korea.

出版信息

Carbohydr Polym. 2024 Jun 15;334:122016. doi: 10.1016/j.carbpol.2024.122016. Epub 2024 Mar 4.

Abstract

This paper reports an environment-friendly biobased foam made with cellulose nanofiber (CNF) and a biobased hyperbranched crosslinker, glycerol succinic anhydride (GSA). As a biobased hyperbranched crosslinker, carboxyl-terminated GSA is synthesized through a straightforward esterification process involving glycerol and succinic anhydride. The GSA-crosslinked CNF (GSA/CNF) foam is prepared using a facile, sustainable, cost-effective, and efficient solvent-exchange method. The resulting foam exhibits notable characteristics, including improved dimensional stability, remarkably low density (13.41 mg/cm) with high porosity (>99 %), and exceptional compressive strength (494 kPa) and modulus (452 kPa). Further, the foam offers outstanding sound absorption capabilities with a coefficient of 0.986 at 2 kHz and remarkably low thermal conductivity (30.18 mW/mK), significantly lower than commonly used and reported porous materials, indicating its potential as an efficient, environmentally friendly sound absorption and thermal insulation material.

摘要

本文报道了一种由纤维素纳米纤维(CNF)和生物基超支化交联剂甘油琥珀酸酐(GSA)制成的环保型生物基泡沫材料。作为一种生物基超支化交联剂,羧基封端的GSA是通过甘油和琥珀酸酐的简单酯化过程合成的。GSA交联的CNF(GSA/CNF)泡沫材料采用简便、可持续、经济高效的溶剂交换法制备。所得泡沫材料具有显著特性,包括改善的尺寸稳定性、极低的密度(13.41毫克/立方厘米)和高孔隙率(>99%),以及出色的抗压强度(494千帕)和模量(452千帕)。此外,该泡沫材料具有出色的吸音能力,在2千赫兹时吸音系数为0.986,热导率极低(30.18毫瓦/米·开尔文),明显低于常用和报道的多孔材料,表明其作为高效环保吸音和隔热材料的潜力。

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