Pitch/Metal Oxide Composite Fibers via Electrospinning for Environmental Applications

Bayan Kaidar, Gaukhar Smagulova, Aigerim Imash, Aruzhan Keneshbekova, Akram Ilyanov, Zulkhair Mansurov
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Abstract

This study investigates the synthesis and application of composite electrospun fibers incorporating coal tar pitch (CTP) and various nanomaterial additives, with a specific focus on their potential for eco-bio-applications. The research underscores the environmentally viable aspects of CTP following a thermal treatment process that eliminates volatile components and sulfur, rendering it amenable for fiber electrospinning and subsequent carbonization. Composite fibers were fabricated by integrating CTP with nanomaterials, including nickel oxide (NiO), titanium dioxide (TiO2), activated carbon (AC), and magnetite (Fe3O4). The C/NiO composite fibers exhibit notable acetone sensing capabilities, specifically displaying a rapid response time of 40.6 s to 100 ppm acetone at 220 °C. The C/TiO2 composite fibers exhibit a distinct “beads-on-a-string” structure and demonstrate a high efficiency of 96.13% in methylene blue decomposition, highlighting their potential for environmental remediation applications. Additionally, the C/AC composite fibers demonstrate effective adsorption properties, efficiently removing manganese (II) ions from aqueous solutions with an 88.62% efficiency, thereby suggesting their utility in water purification applications. This research employs an interdisciplinary approach by combining diverse methods, approaches, and materials, including the utilization of agricultural waste materials such as rice husks, to create composite materials with multifaceted applications. Beyond the immediate utility of the composite fibers, this study emphasizes the significance of deploying environmentally responsible materials and technologies to address pressing eco-bio-challenges.
环境用静电纺丝沥青/金属氧化物复合纤维
本研究探讨了煤焦油沥青(CTP)和各种纳米材料添加剂的复合静电纺丝纤维的合成和应用,并特别关注其在生态生物方面的应用潜力。该研究强调了CTP在热处理过程中去除挥发性成分和硫后对环境的可行性,使其适合纤维静电纺丝和随后的碳化。将CTP与氧化镍(NiO)、二氧化钛(TiO2)、活性炭(AC)、磁铁矿(Fe3O4)等纳米材料进行整合制备复合纤维。C/NiO复合纤维表现出显著的丙酮传感能力,特别是在220°C下对100 ppm丙酮的快速响应时间为40.6 s。C/TiO2复合纤维具有明显的“串珠”结构,对亚甲基蓝的分解效率高达96.13%,具有良好的环境修复应用前景。此外,C/AC复合纤维表现出有效的吸附性能,有效地从水溶液中去除锰(II)离子,效率为88.62%,从而表明其在水净化应用中的实用性。本研究采用跨学科的方法,结合多种方法、途径和材料,包括利用稻壳等农业废弃物,创造具有多方面应用的复合材料。除了复合纤维的直接效用之外,这项研究还强调了采用对环境负责的材料和技术来解决紧迫的生态挑战的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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