Institute of Chemistry, University of the Punjab, New Campus, Pakistan.
WestCHEM, School of Chemistry, University of Glasgow, UK.
Waste Manag Res. 2020 Jun;38(6):689-695. doi: 10.1177/0734242X19899718. Epub 2020 Feb 6.
We report here alumina-substituted Keggin tungstoborate/kaolin clay composite materials (KAB/kaolin) as polyethylene cracking catalysts. KAB/kaolin composites with varying concentrations of KAB (10-50 wt.%) were synthesized by the wet impregnation method and successfully characterized by Fourier-transform infrared spectroscopy, powder X-ray diffraction, thermo-gravimetric analysis and scanning electron microscopy with energy dispersive X-ray spectroscopy analytical techniques. Use of KAB loaded kaolin composites as the catalyst for low-density polyethylene (LDPE) cracking exhibited a higher percentage of polymer conversion (99%), producing 84 wt.% of fuel oil and negligible amount (˂ 1 wt.%) of solid residue while thermal cracking produced ~22 wt.% residue. Furthermore, gas chromatography-mass spectrometry analysis of oil obtained by non-catalytic cracking exhibited a high selectivity to high molecular weight hydrocarbons (C-C) compared to the catalytic cracking where 70 mol.% of gasoline range hydrocarbons (C-C) were produced. We propose that higher cracking ability of our prepared catalysts might ensue from both Brønsted and Lewis acid sites (from KAB and kaolin respectively), which enhanced the yield of liquid fuel products and reduced the cracking temperature of LDPE. These findings suggest that the prepared composites were cost-effective and excellent cracking catalysts that could be recommended for highly efficient conversion of waste plastic materials to petrochemicals at an industrial scale.
我们在此报告氧化铝取代的 Keggin 钨硼酸盐/高岭土粘土复合材料(KAB/高岭土)作为聚乙烯裂化催化剂。通过湿法浸渍法合成了具有不同 KAB 浓度(10-50wt.%)的 KAB/高岭土复合材料,并通过傅里叶变换红外光谱、粉末 X 射线衍射、热重分析和扫描电子显微镜与能量色散 X 射线光谱分析技术对其进行了成功的表征。使用负载 KAB 的高岭土复合材料作为低密度聚乙烯(LDPE)裂化的催化剂,表现出更高的聚合物转化率(99%),产生 84wt.%的燃料油和可忽略不计的(<1wt.%)固体残余物,而热裂化产生约 22wt.%的残余物。此外,通过非催化裂化获得的油的气相色谱-质谱分析显示,与催化裂化相比,具有高分子量烃(C-C)的高选择性,其中 70mol.%的汽油范围烃(C-C)得到生产。我们提出,我们制备的催化剂可能具有更高的裂化能力,这是由于其具有 Brønsted 和 Lewis 酸位(分别来自 KAB 和高岭土),这提高了液体燃料产品的产率并降低了 LDPE 的裂化温度。这些发现表明,所制备的复合材料具有成本效益,是高效的裂化催化剂,可推荐用于在工业规模上将废塑料材料高效转化为石化产品。