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Preparation of mesoporous double-layer carbon microsphere-based solid acid catalyst by hydrothermal method and its application in catalytic transesterification of waste frying oil

机译:水热法制备介孔双层碳微球基固体酸催化剂及其在废油脂催化酯交换中的应用

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BACKGROUND Mesoporous double-layer carbon microspheres (DCSs) were synthesized using hollow tin(IV) oxide (SnO2) microspheres as hard template and sucrose as carbon precursor via the hydrothermal method. Sulfonic acid groups (-SO3H) were introduced onto the surfaces of DCS by sulfuric acid heating and sulfanilic acid diazonium coupling, respectively, to form two solid acids (DCS-SS and DCS-DS, respectively). RESULTS The transmission electron microscopy images showed that the carbon microspheres possessed a hollow double-layer structure with diameters of about 200 to 300 nm and shell thickness of about 30 to 50 nm. Furthermore, the sulfonate treatments caused no changes in the morphology of carbon microspheres. The nitrogen (N-2)-Brunauer-Emmett-Teller (BET) results indicate that DCS, DCS-SS, and DCS-DS featured mesopores with an average pore size of 4.5 to 4.8 nm and BET surface areas of 75 m(2)/g, 57 m(2)/g, and 53 m(2)/g, respectively. The X-ray photoelectron spectroscopy and Fourier-transform infrared results confirmed that the DCS-SS and DCS-DS contained a -SO3H group and their surface acid densities are 4.5 and 4.1 mmol/g, respectively. CONCLUSION DCS-SS and DCS-DS were used to catalyze the transesterification of waste frying oil, and the highest yields of fatty acid methyl esters, that is, 85% and 80%, respectively, could be obtained. (c) 2019 Society of Chemical Industry
机译:背景技术使用中空锡(IV)氧化物(SnO 2)微球作为硬模板和蔗糖作为碳前体合成了介孔的双层碳微球(DCS)。通过分别通过硫酸加热和磺酸重氮偶联将磺酸基团(-SO3H)引入DC的表面上,形成两个固体酸(分别为DCS-SS和DCS-DS)。结果透射电子显微镜图像表明,碳微球具有直径为约200至300nm的空心双层结构,壳体厚度为约30至50nm。此外,磺酸盐处理不会导致碳微球的形态没有变化。氮气(N-2)-Brunauer-Emmett-experer(BET)结果表明DCS,DCS-SS和DCS-DS精选的中孔,平均孔径为4.5至4.8nm,BET表面积为75米(2 )/ g,57m(2)/ g和53m(2)/ g。 X射线光电子体光谱和傅立叶变换红外结果证实DCS-SS和DCS-DS含有-SO3H基团,其表面酸密度分别为4.5和4.1mmol / g。结论DCS-SS和DCS-DS用于催化废油的酯交换,分别可以获得85%和80%的脂肪酸​​甲酯的最高产率。 (c)2019年化学工业协会

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