Bettelli Mercedes A, Hu Qisong, Capezza Antonio J, Johansson Eva, Olsson Richard T, Hedenqvist Mikael S
Department of Fibre and Polymer Technology, Polymeric Materials Division, School of Engineering Sciences in Chemistry, Biotechnology and Health, KTH Royal Institute of Technology, Stockholm, 10044, Sweden.
Department of Plant Breeding, The Swedish University of Agricultural Sciences, Box 190, SE-234 22, Lomma, Sweden.
Commun Chem. 2024 Apr 3;7(1):75. doi: 10.1038/s42004-024-01150-1.
To broaden the range in structures and properties, and therefore the applicability of sustainable foams based on wheat gluten expanded with ammonium-bicarbonate, we show here how three naturally ocurring multifunctional additives affect their properties. Citric acid yields foams with the lowest density (porosity of ~50%) with mainly closed cells. Gallic acid acts as a radical scavenger, yielding the least crosslinked/ aggregated foam. The use of a low amount of this acid yields foams with the highest uptake of the body-fluid model substance (saline, ~130% after 24 hours). However, foams with genipin show a large and rapid capillary uptake (50% in one second), due to their high content of open cells. The most dense and stiff foam is obtained with one weight percent genipin, which is also the most crosslinked. Overall, the foams show a high energy loss-rate under cyclic compression (84-92% at 50% strain), indicating promising cushioning behaviour. They also show a low compression set, indicating promising sealability. Overall, the work here provides a step towards using protein biofoams as a sustainable alternative to fossil-based plastic/rubber foams in applications where absorbent and/or mechanical properties play a key role.
为了拓宽基于用碳酸氢铵膨胀的小麦面筋的可持续泡沫的结构和性能范围,从而扩大其适用性,我们在此展示了三种天然存在的多功能添加剂如何影响它们的性能。柠檬酸产生密度最低的泡沫(孔隙率约为50%),且主要为闭孔结构。没食子酸作为自由基清除剂,产生交联/聚集程度最低的泡沫。使用少量这种酸可产生对体液模拟物质(盐水)吸收量最高的泡沫(24小时后约为130%)。然而,由于栀子苷泡沫含有大量开孔,其表现出快速且大量的毛细管吸收(一秒内吸收50%)。用1重量%的栀子苷可得到密度最大且最硬的泡沫,其交联程度也是最高的。总体而言,这些泡沫在循环压缩下显示出较高的能量损失率(在50%应变下为84 - 92%),表明具有良好的缓冲性能。它们还表现出较低的压缩永久变形,表明具有良好的密封性。总体而言,这项工作朝着在吸收性和/或机械性能起关键作用的应用中,将蛋白质生物泡沫用作基于化石的塑料/橡胶泡沫的可持续替代品迈出了一步。