Alonso Mara Paulette, Hossain Rakibul, El Hajam Maryam, Tajvidi Mehdi
Department of Chemical and Biomolecular Engineering, University of California, Berkeley, CA 94720, USA.
School of Forest Resources and Advanced Structures and Composites Center, University of Maine, Orono, ME 04469, USA.
Nanomaterials (Basel). 2024 Nov 17;14(22):1837. doi: 10.3390/nano14221837.
Biobased foams have the potential to serve as eco-friendly alternatives to petroleum-based foams, provided they achieve comparable thermomechanical and physical properties. We propose a facile approach to fabricate eco-friendly cellulose nanofibril (CNF)-reinforced thermomechanical pulp (TMP) fiber-based foams via an oven-drying process with thermal conductivity as low as 0.036 W/(m·K) at a 34.4 kg/m density. Acrodur, iron chloride (FeCl), and cationic polyacrylamide (CPAM) were used to improve the foam properties. Acrodur did not have any significant effect on the foamability and density of the foams. Mechanical, thermal, cushioning, and water absorption properties of the foams were dependent on the density and interactions of the additives with the fibers. Due to their high density, foams with CPAM and FeCl at a 1% additive dosage had significantly higher compressive properties at the expense of slightly higher thermal conductivity. There was slight increase in compressive properties with the addition of Acrodur. All additives improved the water stability of the foams, rendering them stable even after 24 h of water absorption.
生物基泡沫材料有潜力成为石油基泡沫材料的环保替代品,前提是它们能具备相当的热机械性能和物理性能。我们提出一种简便的方法,通过烘干工艺制造环保型纤维素纳米纤丝(CNF)增强的热机械浆(TMP)纤维基泡沫材料,在密度为34.4 kg/m³时,其热导率低至0.036 W/(m·K)。使用了Acrodur、氯化铁(FeCl)和阳离子聚丙烯酰胺(CPAM)来改善泡沫材料的性能。Acrodur对泡沫材料的发泡性和密度没有任何显著影响。泡沫材料的机械、热、缓冲和吸水性能取决于密度以及添加剂与纤维之间的相互作用。由于密度较高,添加剂用量为1%的含CPAM和FeCl的泡沫材料具有显著更高的压缩性能,但代价是热导率略高。添加Acrodur后压缩性能略有提高。所有添加剂都改善了泡沫材料的水稳定性,使其即使在吸水24小时后仍保持稳定。