生物柴油中亚胺类化合物作为金属离子螯合剂和自由基清除剂的抗氧化能力评价

IF 2.1 4区 工程技术 Q3 ENERGY & FUELS Biofuels-Uk Pub Date : 2023-09-23 DOI:10.1080/17597269.2023.2257959
Kelly Costa Cabral Salazar Ramos Moreira, Matheus Manhães Vieira da Silva, Matheus Felipe Pereira Jadjeski, Christiane Mapheu Nogueira, Vivian Chagas da Silveira
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引用次数: 0

摘要

摘要在亚胺类抗氧化剂存在的情况下,采用酸值(AV)、过氧化值(PV)、2,2-二苯基-1-苦酰肼(DPPH)自由基清除试验和热重法(TG)分析了影响市售生物柴油氧化稳定性的因素。本研究合成了亚胺类化合物N,N′-双-(4-十八酸酯)-水杨基乙二胺(硬脂苯乙烯)和N,N′-双-(4-十六酸酯)-水杨基乙二胺(棕榈苯乙烯),考察了它们作为金属螯合剂和除氧剂的性能。AV分析显示,含铜和不含铜样品之间存在轻微差异。PV实验表明,在室温和50℃下,这两种亚胺都是有效的自由基清除剂和铜离子螯合剂,优于商业抗氧化剂丁基羟基甲苯(BHT)和叔丁基对苯二酚(TBHQ)。导数热重(DTG)曲线表明,与商业抗氧化剂相比,这两种亚胺都更有效。在DPPH实验中,棕榈酸亚胺表现出最好的抑制效果,其最大抑制浓度(IC50)为12.4·10−5 mol L−1。因此,硬脂酸亚胺和棕榈酸亚胺在室温和50℃下都是高效的生物柴油抗氧化剂,具有优异的金属螯合剂和自由基清除剂的功能。然而,硬脂酸树脂作为金属螯合剂表现出更好的性能,而棕榈酸树脂作为自由基清除剂则更有效。关键词:生物柴油氧化降解抗氧化添加剂氧化稳定性披露声明作者未报告潜在利益冲突。本研究得到CNPq - Conselho Nacional de Desenvolvimento Científico e Tecnológico的支持;FAPES -圣圣共和国基金会。
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Antioxidative capacity evaluation of imine compounds as metal ions chelators and free radical scavengers in biodiesel
AbstractFactors affecting the oxidation stability of commercially available biodiesel were primarily investigated using the acid value (AV), peroxide value (PV), 2,2-diphenyl-1-picrylhydrazyl (DPPH) radical scavenging assay, and thermogravimetric (TG) analysis in the presence of imine antioxidants. In this study, the imine compounds N,N′-bis-(4-octadecanate)-salicyl ethylenediamine (stearic dhben) and N,N′-bis-(4-hexadecanate)-salicyl ethylenediamine (palmitic dhben) were synthesized to evaluate their abilities as metal chelators and oxygen scavengers. The AV analysis showed a slight difference between the samples with and without copper. The PV tests demonstrated that both imines were efficient free radical scavengers and copper ion chelators at both room temperature and 50 °C, outperforming the commercial antioxidants butylhydroxytoluene (BHT) and tert-butylhydroquinone (TBHQ). The Derivative Thermogravimetry (DTG) curves indicated that both imines were more effective compared to commercial antioxidants. In the DPPH assay, it was observed that the palmitic dhben imine exhibited the best performance, with an half maximal inhibitory concentration (IC50) of 12.4·10−5 mol L−1. Therefore, both stearic and palmitic dhben imines act as efficient biodiesel antioxidants at room temperature and 50 °C, functioning as excellent metal chelators and free radical scavengers. However, stearic dhben demonstrated better performance as a metal chelator, whereas palmitic dhben was more effective as a free radical scavenger.Keywords: Biodieseloxidative degradationantioxidant additivesSchiff basesoxidative stability Disclosure statementNo potential conflict of interest was reported by the authors.Additional informationFundingThis work was supported by CNPq - Conselho Nacional de Desenvolvimento Científico e Tecnológico; FAPES - Fundação de Amparo à Pesquisa do Estado do Espírito Santo.
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来源期刊
Biofuels-Uk
Biofuels-Uk Energy-Renewable Energy, Sustainability and the Environment
CiteScore
5.40
自引率
9.50%
发文量
56
期刊介绍: Current energy systems need a vast transformation to meet the key demands of the 21st century: reduced environmental impact, economic viability and efficiency. An essential part of this energy revolution is bioenergy. The movement towards widespread implementation of first generation biofuels is still in its infancy, requiring continued evaluation and improvement to be fully realised. Problems with current bioenergy strategies, for example competition over land use for food crops, do not yet have satisfactory solutions. The second generation of biofuels, based around cellulosic ethanol, are now in development and are opening up new possibilities for future energy generation. Recent advances in genetics have pioneered research into designer fuels and sources such as algae have been revealed as untapped bioenergy resources. As global energy requirements change and grow, it is crucial that all aspects of the bioenergy production process are streamlined and improved, from the design of more efficient biorefineries to research into biohydrogen as an energy carrier. Current energy infrastructures need to be adapted and changed to fulfil the promises of biomass for power generation. Biofuels provides a forum for all stakeholders in the bioenergy sector, featuring review articles, original research, commentaries, news, research and development spotlights, interviews with key opinion leaders and much more, with a view to establishing an international community of bioenergy communication. As biofuel research continues at an unprecedented rate, the development of new feedstocks and improvements in bioenergy production processes provide the key to the transformation of biomass into a global energy resource. With the twin threats of climate change and depleted fossil fuel reserves looming, it is vitally important that research communities are mobilized to fully realize the potential of bioenergy.
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