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Deep and fast oxidative desulfurization of fuels using graphene oxide-based phosphotungstic acid catalysts

机译:使用氧化石墨烯基磷钨酸催化剂进行燃料的深度和快速氧化脱硫

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摘要

Extractive-catalytic oxidative desulfurization (ECOD) technology is a potential industrial application for attaining low-sulfur fuel oils. In this research, novel graphene oxide (GO)-based heterogeneous catalysts were synthesized by immobilization of different amounts of phosphotungstic acid H3PW12O40 (HPW) on GO. The obtained HPW-GO catalysts were characterized by FT-IR, SEM, EDX, TEM, AFM, and RAMAN analyses. The ECOD was applied for removal of dibenzothiophene (DBT) from a model fuel with H2O2 as the oxidant, acetonitrile as the extracting solvent, and HPW-GOs as the catalysts. Among the catalysts with different HPW contents (5, 10, 20, 25, 30, 40 wt%), the catalyst with 40 wt% HPW had the best performance. The optimum reaction time, temperature, H2O2/sulfur molar ratio (O/S) as well as the kinetic parameters (kinetic constants and apparent activation energy) were evaluated. 100 percent desulfurization yield was achieved in a short time (t= 30 min) using the 40 wt% catalyst under moderate conditions (catalyst loading= 5 g/l, O/S= 6, T= 333 K). Aiding by synergism, the heterogeneous HPW-GO catalyst showed a higher desulfurization yield compared to that by the homogeneous HPW. The reactivity of 4,6-dimethyldibenzothiophene (4,6-DMDBT) in the ECOD process was found to be equal to that of DBT but much higher than the reactivity of benzothiophene (BT) within 60 min. The catalyst could be recycled for eight times without significant decrease in activity. A reasonable reaction pathway was proposed based on the GC-MS analysis. Almost all of the sulfur content of a real fuel could be completely oxidized and removed by the ECOD. Comparing to the results reported in literature, the features of proposed one-step fast ECOD process, which requires very low catalyst at moderate conditions for complete desulfurization without any phase transfer agent, makes it distinctive for practical applications.
机译:萃取催化氧化脱硫(ECOD)技术是获得低硫燃料油的潜在工业应用。在这项研究中,通过将不同量的磷钨酸H3PW12O40(HPW)固定在GO上,合成了新型的基于氧化石墨烯(GO)的多相催化剂。通过FT-IR,SEM,EDX,TEM,AFM和RAMAN分析对得到的HPW-GO催化剂进行了表征。 ECOD用于从模型燃料中脱除二苯并噻吩(DBT),其中过氧化氢为氧化剂,乙腈为萃取溶剂,HPW-GOs作为催化剂。在具有不同的HPW含量(5、10、20、25、30、40重量%)的催化剂中,具有40重量%的HPW的催化剂具有最佳性能。评价了最佳反应时间,温度,H2O2 /硫摩尔比(O / S)以及动力学参数(动力学常数和表观活化能)。使用40 wt%的催化剂在中等条件下(催化剂负载量= 5 g / l,O / S = 6,T = 333 K),在短时间内(t = 30分钟)获得了100%的脱硫率。借助协同作用,与均相HPW相比,非均相HPW-GO催化剂显示出更高的脱硫产率。发现ECOD过程中的4,6-二甲基二苯并噻吩(4,6-DMDBT)的反应性与DBT相等,但比60分钟内苯并噻吩(BT)的反应性高得多。该催化剂可以循环八次而不会显着降低活性。根据GC-MS分析提出了合理的反应途径。实际燃料中几乎所有的硫含量都可以被ECOD完全氧化并除去。与文献报道的结果相比,拟议的一步快速ECOD工艺的特点是在中等条件下需要极低的催化剂才能完全脱硫,而无需任何相转移剂,这使其在实际应用中独树一帜。

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