Department of Chemical Engineering, School of Technology, Pandit Deendayal Petroleum University, Raisan, Gandhinagar, Gujarat, 382007, India.
Graphene & Advanced 2D Materials Research Group (GAMRG), School of Science and Technology, Sunway University, Subang Jaya, Selangor, Malaysia.
Environ Sci Pollut Res Int. 2021 Jun;28(21):26747-26761. doi: 10.1007/s11356-021-12391-1. Epub 2021 Jan 25.
The novel phosphonium-based ionic liquid (IL), triphenyl methyl phosphonium tosylate ([TPMP][Tos]), has been synthesized and applied as a phase transfer catalyst (PTC) in the ultrasound-assisted oxidative desulfurization (UAODS). Oxidation of model fuel (MF) containing dibenzothiophene (DBT) was carried out using an equimolar mixture of HO-CHCOOH as an oxidant at 40-70 °C in the presence of IL. The sulfur compound is converted into polar sulfone, and the maximum desulfurization efficiency was examined. The effect of process parameters such as reaction temperature, reaction time, molar ratio of oxidant to sulfur (n(O/S)), and the mass ratio of ionic liquid to model fuel (m(IL/MF)) was studied, and the conditions for maximizing the DBT conversion rate were found. Maximum conversion (> 99%) was obtained at a temperature of 70 °C with m(IL/MF) of 0.8. The oxidation reactivity of various sulfur compounds was studied at different time intervals. To verify the effect of ionic liquid and ultrasound irradiation, extractive desulfurization (EDS), oxidative desulfurization (ODS), and UAODS in the presence of IL were carried out. The experimental results show that the UAODS process gives the highest desulfurization efficiency. A kinetic study was performed to estimate the rate constant and the order of oxidation reaction.
新型膦基离子液体(IL),三苯基甲基膦对甲苯磺酸盐([TPMP][Tos]),已被合成并应用于超声辅助氧化脱硫(UAODS)中的相转移催化剂(PTC)。采用等摩尔比的 HO-CHCOOH 作为氧化剂,在 IL 的存在下,于 40-70°C 下对含有二苯并噻吩(DBT)的模型燃料(MF)进行氧化。含硫化合物转化为极性砜,考察了最大脱硫效率。研究了反应温度、反应时间、氧化剂与硫的摩尔比(n(O/S))和离子液体与模型燃料的质量比(m(IL/MF))等工艺参数的影响,找到了最大 DBT 转化率的条件。在 70°C 时,m(IL/MF)为 0.8 时,转化率最高(>99%)。在不同时间间隔下研究了各种含硫化合物的氧化反应性。为了验证离子液体和超声辐射的效果,进行了萃取脱硫(EDS)、氧化脱硫(ODS)和 IL 存在下的 UAODS。实验结果表明,UAODS 过程具有最高的脱硫效率。进行了动力学研究以估计氧化反应的速率常数和反应级数。