Catalyst screening for conversion of Chlorella sp. to aromatic fuel additives: A sustainable strategy for CO2 capture

IF 5.8 2区 化学 Q1 CHEMISTRY, ANALYTICAL Journal of Analytical and Applied Pyrolysis Pub Date : 2024-11-22 DOI:10.1016/j.jaap.2024.106874
Guilherme Quintela Calixto , Josué da Cruz de Souza , José Luiz Francisco Alves , Joemil Oliveira de Deus Junior , Júlio de Andrade Oliveira Marques , Iane Maiara Soares de Souza , Sibele Berenice Castellã Pergher , Dulce Maria de Araújo Melo , Renata Martins Braga
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Abstract

Developing biofuels with characteristics similar to current fossil fuels and compatibility with existing petroleum infrastructure (drop-in biofuels) is gaining prominence, aligning with global efforts towards carbon-neutral economies and decarbonization of the transportation sector. The originality of the current study involves two directions: first, the use of Chlorella sp. microalgae, cultivated under simulated post-combustion gas, as a raw material for producing drop-in biofuel precursors; and second, an investigation of the catalytic activity of hierarchical zeolites in the deoxygenation and denitrogenation of volatile pyrolysis products, enhancing hydrocarbon content. To accomplish this, a micro-furnace-type temperature-programmable pyrolyzer coupled with chromatographic separation and mass spectrometry detection (Py-GC/MS) was utilized to assess the upgrading effectiveness of distinct zeolites (faujasite-type, MFI-type, and mordenite-type) on volatile pyrolysis products. All tested zeolites effectively reduced oxygenated and nitrogenated compounds in the volatile pyrolysis products, enhancing their suitability for producing renewable fuel. This supports sustainable development goals by promoting affordable, clean energy and climate action. HMor yielded the highest hydrocarbon content (98.5 %), followed by HZSM-5 (97.6 %) and HY (85.5 %). Catalytic upgrading significantly increased the concentration of aromatic hydrocarbons (at least 66.3 %), with MFI-type zeolites showing the highest selectivity for valuable BETX compounds (benzene, ethylbenzene, toluene, xylene). Hydrocarbons in the gasoline range, with up to 91.7 %, predominantly align with the needs of the transportation fuel market. The principal component analysis illustrates that using MFI-type zeolites promoted the lowest selectivity for PAHs, constituting precursors for coke formation, which is advantageous for ensuring a longer catalyst lifespan. Our results are promising and encourage the conversion of microalgal biomass into renewable fuel additives for formulating drop-in biofuels, as hydrocarbon-rich volatile pyrolysis products could be directly integrated into existing biorefineries. Thus, microalgal biomass cultivated using flue gas as the carbon source can be viewed as a versatile and promising resource for producing renewable fuel additives, contributing to developing a sustainable, low-carbon future.
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小球藻转化为芳香燃料添加剂的催化剂筛选:二氧化碳捕获的可持续策略
开发与现有化石燃料特性相似且与现有石油基础设施兼容的生物燃料(即可替代生物燃料)正日益受到重视,这与全球致力于碳中和经济和交通部门脱碳的努力相一致。当前研究的独创性涉及两个方向:第一,利用在模拟燃烧后气体下培养的小球藻(Chlorella sp.微藻)作为生产滴入式生物燃料前体的原料;其次,研究了分级沸石对挥发性热解产物脱氧脱氮的催化活性,提高了烃类含量。为了实现这一目标,利用微炉式温度可编程热解仪结合色谱分离和质谱检测(pygc /MS)来评估不同沸石(faujasite型,mfi型和丝光沸石型)对挥发性热解产物的升级效果。所有测试的沸石都能有效地还原挥发性热解产物中的含氧和含氮化合物,增强其生产可再生燃料的适用性。它通过促进负担得起的清洁能源和气候行动来支持可持续发展目标。烃类含量最高的是hmo(98.5 %),其次是HZSM-5(97.6% %)和HY(85.5 %)。催化升级显著提高了芳烃的浓度(至少66.3% %),mfi型沸石对有价值的BETX化合物(苯、乙苯、甲苯、二甲苯)的选择性最高。汽油中的碳氢化合物含量高达91.7% %,主要符合运输燃料市场的需求。主成分分析表明,使用mfi型沸石对多环芳烃的选择性最低,多环芳烃是形成焦炭的前体,这有利于确保更长的催化剂寿命。我们的研究结果很有希望,并鼓励将微藻生物质转化为可再生燃料添加剂,用于配制滴入式生物燃料,因为富含碳氢化合物的挥发性热解产品可以直接集成到现有的生物炼油厂中。因此,利用烟道气作为碳源培育的微藻生物量可被视为生产可再生燃料添加剂的一种多功能和有前途的资源,有助于发展可持续的低碳未来。
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来源期刊
CiteScore
9.10
自引率
11.70%
发文量
340
审稿时长
44 days
期刊介绍: The Journal of Analytical and Applied Pyrolysis (JAAP) is devoted to the publication of papers dealing with innovative applications of pyrolysis processes, the characterization of products related to pyrolysis reactions, and investigations of reaction mechanism. To be considered by JAAP, a manuscript should present significant progress in these topics. The novelty must be satisfactorily argued in the cover letter. A manuscript with a cover letter to the editor not addressing the novelty is likely to be rejected without review.
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