Fabrication of plasticized interpenetrating polymer network (IPN) leatherette derived from bacterial cellulose and silicon dioxide using a novel 2-in-1 thickening process

IF 4.9 2区 工程技术 Q1 MATERIALS SCIENCE, PAPER & WOOD Cellulose Pub Date : 2024-09-14 DOI:10.1007/s10570-024-06163-6
Hung Ngoc Phan, Diep Thi Mong Phan, Nguyen Thi Thu Vo, Satoko Okubayashi
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Abstract

The negative consequences of fast fashion have heightened concerns about the fashion industry’s sustainability. Bacterial Cellulose (BC) has emerged as a promising biomaterial for sustainable applications in textiles and leather. However, dehydrated BC’s low thickness and high stiffness pose limitations, reducing its appeal in diverse fields, including fashion, healthcare, etc. To address this challenge, a Plasticized BC-based interpenetrating polymer network (IPN) leatherette is investigated using an innovative 2-in-1 thickening process and a following softening step using Glycerol. The thickening process involves a novel “self-thickening” technique based on cellulosic mercerization and a formation of interpenetrating polymer network structure using BC and Silica skeleton. The fabricated BC-based material exhibits unique IPN structure and significant increase in BC thickness to 1.83±0.10 mm (\(\approx\)16.64 times thicker), areal density to 2034.46±37.58 \(\hbox {g/m}^{2}\) (\(\approx\)16.33 times denser), moisture content of 31.09±0.48%, moisture regain of 45.12±1.01%, flexural rigidity of 3291.29±100.88 \(\upmu\)Nm, and improved bending modulus of 6.48±0.20 MPa (\(\approx\)1035.27 times lower) compared to those of untreated BC. Furthermore, the durability of the Plasticized BC-based IPN leatherette is evaluated through five washing cycles, with the material retaining approximately 75.96%, 66.61%, 82.98%, and 77.39% of its unwashed thickness, areal density, moisture content, and regain, respectively. This study contributes to the value of BC-based materials in the textile and leather industries, offering a sustainable alternative to existing materials and production processes. Moreover, developing this novel 2-in-1 thickening process establishes a foundation for future research on BC functionalization in various applications, thereby contributing to sustainable development.

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利用新型二合一增稠工艺制作细菌纤维素和二氧化硅衍生的增塑互穿聚合物网络(IPN)人造革
摘要快速时尚的负面影响加剧了人们对时尚产业可持续性的担忧。细菌纤维素(BC)已成为纺织品和皮革中一种很有前景的可持续应用生物材料。然而,脱水纤维素的低厚度和高硬度限制了其在时装、医疗保健等多个领域的应用。为了应对这一挑战,我们采用创新的二合一增稠工艺和甘油软化步骤,研究了一种基于塑化 BC 的互穿聚合物网络(IPN)人造革。增稠工艺包括一种基于纤维丝光的新型 "自增稠 "技术,以及利用 BC 和二氧化硅骨架形成的互穿聚合物网络结构。制成的 BC 基材料表现出独特的 IPN 结构,BC 厚度显著增加到 1.83±0.10 mm(是原来的 16.64 倍),平均密度达到 2034.46±37.58 \(\hbox {g/m}^{2}\) (是原来的 16.33倍),含水率为31.09±0.48%,回潮率为45.12±1.01%,抗弯刚度为3291.29±100.88 Nm,弯曲模量为6.48±0.20 MPa(比未处理的BC低1035.27倍)。此外,通过五个洗涤周期评估了基于增塑萃取物的 IPN 人造革的耐久性,该材料的未洗涤厚度、平均密度、含水率和再生率分别保持了约 75.96%、66.61%、82.98% 和 77.39%。这项研究有助于提高以 BC 为基础的材料在纺织和皮革行业中的价值,为现有材料和生产工艺提供了一种可持续的替代方案。此外,这种新型二合一增稠工艺的开发为今后研究萃取物在各种应用中的功能化奠定了基础,从而促进了可持续发展。
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来源期刊
Cellulose
Cellulose 工程技术-材料科学:纺织
CiteScore
10.10
自引率
10.50%
发文量
580
审稿时长
3-8 weeks
期刊介绍: Cellulose is an international journal devoted to the dissemination of research and scientific and technological progress in the field of cellulose and related naturally occurring polymers. The journal is concerned with the pure and applied science of cellulose and related materials, and also with the development of relevant new technologies. This includes the chemistry, biochemistry, physics and materials science of cellulose and its sources, including wood and other biomass resources, and their derivatives. Coverage extends to the conversion of these polymers and resources into manufactured goods, such as pulp, paper, textiles, and manufactured as well natural fibers, and to the chemistry of materials used in their processing. Cellulose publishes review articles, research papers, and technical notes.
期刊最新文献
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