增强二氧化钛涂层黄麻纤维的机械、物理化学和耐水性:γ辐射、化学处理和结晶度的影响

IF 2.3 4区 工程技术 Q1 MATERIALS SCIENCE, TEXTILES
Md. Monirul Islam, Mohammad Asaduzzaman Chowdhury, Anik Talukder, Nayem Hossain, Md. Masud Rana, Shuva Chandra Das, Minhaz Hossain, Md. Rifat Khandaker, Md. Ahadul Islam Patwary, Ruhul Amin Khan
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引用次数: 0

摘要

本研究提出了一种新型的协同表面改性方法,结合过氧乙酸(PAA)处理、TiO2纳米粒子涂层和γ射线照射,可显著提高黄麻纤维的机械强度、表面形貌、结晶度和耐水性。整合这三种独特的方法可以实现深刻的结构改变和表面功能化,从而产生更疏水、耐用和机械坚固的纤维。策略性的处理顺序促进了TiO2的充分粘附,纤维致密化,并改善了纤维基质的相容性。这种方法解决了原料黄麻纤维性能的关键限制,并为包装、纺织品和其他工业应用中的生物基复合材料开发提供了可扩展的途径。黄麻原纤维具有断裂力小、吸水率高的特点。TiO2涂层改善了这些性能,在3 kGy的伽马辐射下观察到进一步的增强。最显著的改进是化学处理去除木质素和半纤维素(纤维素JF)和过乙酸(PAA)处理,结合TiO2涂层和γ辐照。paa处理后的纤维具有最高的断裂力(492.23 N,比原纤维提高112%)、拉伸强度(提高169.85%)、弹性模量(提高237.26%)和韧性(提高116%)。这些纤维的含水率最低(3.86%,降低67.54%),回湿率最低(4.01%,降低70.24%),吸水率最低(102.26%,降低52.92%),水接触角最高(86.25°,增加117.51%)。SEM分析表明,PAA处理后的纤维结构更加致密均匀,促进了TiO2的粘附性,减轻了γ辐射引起的微开裂。FTIR光谱证实了TiO2的存在,并显示出明显的结构变化,特别是经过PAA处理后。结晶度随处理步骤的增加而增加,经paa处理的纤维结晶度最高可达83.53%。这些发现证明了TiO2涂层、伽马辐射和化学处理在提高黄麻纤维性能方面的协同效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancement of Mechanical, Physiochemical and Water Resistance Properties of TiO2-Coated Jute Fibers: Effects of Gamma Irradiation, Chemical Treatments and Crystallinity

This study introduces a novel, synergistic surface modification approach combining peracetic acid (PAA) treatment, TiO2 nanoparticle coating, and gamma irradiation to significantly enhance jute fibers' mechanical strength, surface morphology, crystallinity, and water resistance. Integrating these three unique methods enables profound structural alteration and surface functionalization, resulting in a more hydrophobic, durable, and mechanically robust fiber. The strategic sequence of treatments promotes adequate TiO2 adhesion, fiber densification, and improved fiber matrix compatibility. This approach addresses critical limitations in raw jute fiber performance and offers a scalable path forward for bio-based composite development in packaging, textiles, and other industrial applications. Raw jute fibers exhibited low breaking force and high water absorption. TiO2 coating improved these properties, with further enhancements observed upon gamma irradiation at 3 kGy. The most significant improvements were the chemical treatment to remove lignin and hemicellulose (cellulose JF) and per-acetic acid (PAA) treatment, combined with TiO2 coating and gamma irradiation. PAA-treated fibers showed the highest breaking force (492.23 N, a 112% increase compared to raw fibers), tensile strength (169.85% increase), elastic modulus (237.26% increase), and toughness (116% increase). These fibers also exhibited the lowest moisture content (3.86%, a 67.54% reduction), moisture regain (4.01%, a 70.24% reduction), and water absorption (102.26%, a 52.92% reduction), along with the highest water contact angle (86.25°, a 117.51% increase). SEM analysis revealed that PAA treatment resulted in a more compact and uniform fiber structure, promoting better TiO2 adhesion and mitigating some micro-cracking induced by gamma radiation. FTIR spectroscopy confirmed the presence of TiO2 and indicated significant structural changes, especially with PAA treatment. Crystallinity also increased with each treatment step, reaching a maximum of 83.53% for the PAA-treated fibers. These findings demonstrate the synergistic effects of TiO2 coating, gamma irradiation, and chemical treatments in enhancing the properties of jute fibers for high-performance applications.

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来源期刊
Fibers and Polymers
Fibers and Polymers 工程技术-材料科学:纺织
CiteScore
3.90
自引率
8.00%
发文量
267
审稿时长
3.9 months
期刊介绍: -Chemistry of Fiber Materials, Polymer Reactions and Synthesis- Physical Properties of Fibers, Polymer Blends and Composites- Fiber Spinning and Textile Processing, Polymer Physics, Morphology- Colorants and Dyeing, Polymer Analysis and Characterization- Chemical Aftertreatment of Textiles, Polymer Processing and Rheology- Textile and Apparel Science, Functional Polymers
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