废核桃壳载原棉纤维功能化复合材料修复含油污水

IF 3 4区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
Amatur Roquia, Adel Mohsenzadeh, Wafa Aqib Nasir Al Rawahi, A. H. Bhat, Widad Saif Al Rawahi, Horia Suliman Al-Hattali, Zamzam Rashid Al- Souti, Zuwainah Rashid Al-Husaini
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引用次数: 0

摘要

石油泄漏严重造成水污染,对环境和健康造成严重危害。本研究以天然纤维为基材,探讨功能化复合材料处理含油废水的潜力。具体来说,原棉与活性炭和碳纳米管结合,形成了由木炭、活性炭和核桃壳生成的碳纳米管组成的三种复合材料A、B和C。这些复合材料是通过超声波处理、高压灭菌和干燥工艺制备的,随后评估了它们的吸油能力和回收效率。傅里叶变换红外光谱分析显示,碳纳米管中存在羧酸、醛、烯烃、酯和羰基等官能团,表明碳纳米管与油之间存在显著的化学相互作用。扫描电镜图像显示碳纳米管复合材料的圆柱形和扭曲结构,在更高的放大倍数下可以看到微小的裂纹。炭、活性炭和碳纳米管复合材料的初始质量分别为1.25 g、1.25 g和1.00 g,处理后分别增加到6.74 g、6.98 g和6.53 g。活性炭和碳纳米管复合材料表现出优异的除油效率,分别达到97.31%和99.88%,并且在5个循环中保持100%的除油效率。在连续流系统中,活性炭和碳纳米管的效率分别为70%和74%。这项研究强调了碳纳米管基复合材料在水处理方面的巨大潜力,展示了出色的采油和吸附能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Remediation of Contaminated Oily Water utilizing Functionalized Composites made from Waste Walnut Shells Loaded on Raw Cotton Fiber

Remediation of Contaminated Oily Water utilizing Functionalized Composites made from Waste Walnut Shells Loaded on Raw Cotton Fiber

Oil spills significantly contribute to water pollution, posing severe environmental and health hazards. This study investigates the potential of functionalized composites in treating oily wastewater, utilizing natural fibers as substrates. Specifically, raw cotton was combined with activated carbon and carbon nanotubes to create three types of composites A, B, and C made up of charcoal, activated carbon, and carbon nanotubes generated from walnut shells. These composites were fabricated using ultrasonic treatment, autoclaving, and drying processes, and subsequently evaluated for their oil adsorption capacities and recovery efficiencies. Fourier Transform Infrared Spectroscopy analysis revealed the presence of functional groups such as carboxylic acids, aldehydes, alkenes, esters, and carbonyls, indicating significant chemical interactions between carbon nanotubes and oil. Scanning Electron Microscopy images showed cylindrical and twisted structures of the carbon nanotubes composites, with minor cracks becoming visible at higher magnifications. The initial weights of the charcoal, activated carbon, and carbon nanotubes composites were 1.25 g, 1.25 g, and 1.00 g, respectively, which increased to 6.74 g, 6.98 g, and 6.53 g after treatment. Activated carbon and carbon nanotubes composites demonstrated superior oil removal efficiencies, achieving recovery rates of 97.31% and 99.88%, respectively, and maintaining 100% efficiency over five cycles. In continuous flow systems, the efficiencies of activated carbon and carbon nanotubes were found to be 70% and 74%, respectively. This research underscores the high potential of carbon nanotubes-based composites for water treatment, demonstrating excellent oil recovery and adsorption capabilities.

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来源期刊
Water, Air, & Soil Pollution
Water, Air, & Soil Pollution 环境科学-环境科学
CiteScore
4.50
自引率
6.90%
发文量
448
审稿时长
2.6 months
期刊介绍: Water, Air, & Soil Pollution is an international, interdisciplinary journal on all aspects of pollution and solutions to pollution in the biosphere. This includes chemical, physical and biological processes affecting flora, fauna, water, air and soil in relation to environmental pollution. Because of its scope, the subject areas are diverse and include all aspects of pollution sources, transport, deposition, accumulation, acid precipitation, atmospheric pollution, metals, aquatic pollution including marine pollution and ground water, waste water, pesticides, soil pollution, sewage, sediment pollution, forestry pollution, effects of pollutants on humans, vegetation, fish, aquatic species, micro-organisms, and animals, environmental and molecular toxicology applied to pollution research, biosensors, global and climate change, ecological implications of pollution and pollution models. Water, Air, & Soil Pollution also publishes manuscripts on novel methods used in the study of environmental pollutants, environmental toxicology, environmental biology, novel environmental engineering related to pollution, biodiversity as influenced by pollution, novel environmental biotechnology as applied to pollution (e.g. bioremediation), environmental modelling and biorestoration of polluted environments. Articles should not be submitted that are of local interest only and do not advance international knowledge in environmental pollution and solutions to pollution. Articles that simply replicate known knowledge or techniques while researching a local pollution problem will normally be rejected without review. Submitted articles must have up-to-date references, employ the correct experimental replication and statistical analysis, where needed and contain a significant contribution to new knowledge. The publishing and editorial team sincerely appreciate your cooperation. Water, Air, & Soil Pollution publishes research papers; review articles; mini-reviews; and book reviews.
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