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Synthesis of a nanocomposite based on chitosan and modified heteropolyanion as a nanocatalyst for oxidative desulfurization of real and thiophenic model fuels

机译:基于壳聚糖的纳米复合材料合成,改性杂多氰基为真实硫代和噻吩模型燃料的氧化脱硫作为纳米催化剂

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An efficient catalytic oxidative desulfurization (CODS) strategy has been developed using an organic-inorganic hybrid phase-transfer type nanocatalyst (IMID-KTHPA@CTS). A new organic-inorganic hybrid phase transfer nanocatalyst based on chitosan polymer (CTS) and Keggin-type heteropolyanion (KTHPA) was prepared by modification of heteropolyacid (H3PW12O40) with imidazole (C3H4N2) and immobilization on chitosan. The synthesized nanocomposite (IMID-KTHPA@CTS) was characterized using FT-IR, P-31 NMR, XRD, and SEM techniques. The modified heteropolyanion species were highly dispersed on the chitosan polymer matrix. The catalytic activity of IMID-KTHPA@CTS nanocomposite was tested on the CODS process of gasoline and thiophenic model fuels. The obtained results of CODS demonstrated that highest sulfur removal efficiency (97%) could be achieved at 35 degrees C after 1 h. On the basis of the proposed reaction pathway, the organic sulfur substrates were oxidized catalytically using CH3COOH:H2O2 as an oxidant in the presence of IMID-KTHPA@CTS nanocatalyst. The main factors affecting CODS efficiency, including amount of catalyst, time and temperature, were investigated. Kinetic parameters of oxidation of sulfur compounds, reaction mechanism, and reusability of catalyst are discussed. The excellent reusability of the heterogeneous IMID-KTHPA@CTS nanocomposite was demonstrated for five cycles.
机译:使用有机 - 无机杂化相 - 转移型纳米催化剂(IMID-KTHPA @ CTS)开发了一种有效的催化氧化脱硫(CODS)策略。通过用咪唑(C3H4N2)的杂唑(C3H4N2)改性杂唑(H3PW12O40)并在壳聚糖固定化制备基于壳聚糖聚合物(CTS)和KEGGIN型杂多氰基(KthPA)的新的有机无机杂化相转移纳米催化剂。使用FT-IR,P-31 NMR,XRD和SEM技术表征合成的纳米复合材料(IMID-KthPA @ CTS)。改性的杂多氰基物质高度分散在壳聚糖聚合物基质上。在汽油和噻吩模型燃料的CODS过程中测试了IMID-KTHPA @ CTS纳米复合材料的催化活性。所得COD的结果证明,在1小时后可以在35℃下以35℃实现最高的硫去除效率(97%)。在所提出的反应途径的基础上,在IMID-KTHPA纳米催化剂存在下,使用CH 3 COOH:H 2 O 2作为氧化剂催化氧化有机硫底物。研究了影响CODS效率的主要因素,包括催化剂,时间和温度的量。讨论了硫化合物,反应机理和催化剂的可重用性的氧化动力学参数。证实了五个循环的非均相咪酯-KthPA @ CTS纳米复合材料的优异可重用性。

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