School of Environmental Engineering, University of Seoul, Seoul, 02504, South Korea.
Department of Environmental Engineering, Kwangwoon University, Seoul, South Korea.
Environ Res. 2024 Mar 15;245:118076. doi: 10.1016/j.envres.2023.118076. Epub 2023 Dec 29.
Owing to the ever-increasing generation of plastic waste, the need to develop environmentally friendly disposal methods has increased. This study explored the potential of waste plastic straw to generate valuable light olefins and monocyclic aromatic hydrocarbons (MAHs) via catalytic pyrolysis using high-silica zeolite-based catalysts. HZSM-5 (SiO/AlO:200) exhibited superior performance, yielding more light olefins (49.8 wt%) and a higher MAH content than Hbeta (300). This was attributed to the increased acidity and proper shape selectivity. HZSM-5 displayed better coking resistance (0.7 wt%) than Hbeta (4.4 wt%) by impeding secondary reactions, limiting coke precursor formation. The use of HZSM-5 (80) resulted in higher MAHs and lower light olefins than HZSM-5 (200) because of its higher acidity. Incorporation of Co into HZSM-5 (200) marginally lowered light olefin yield (to 44.0 wt%) while notably enhancing MAH production and boosting propene selectivity within the olefin composition. These observations are attributed to the well-balanced coexistence of Lewis and Brønsted acid sites, which stimulated the carbonium ion mechanism and induced H-transfer, cyclization, Diels-alder, and dehydrogenation reactions. The catalytic pyrolysis of plastic straw over high-silica and metal-loaded HZSM-5 catalysts has been suggested as an efficient and sustainable method for transforming plastic waste materials into valuable light olefins and MAHs.
由于塑料废弃物的不断产生,开发环保处理方法的需求不断增加。本研究探索了利用基于高硅沸石的催化剂通过催化热解将废塑料吸管转化为有价值的轻质烯烃和单环芳烃(MAHs)的潜力。HZSM-5(SiO/AlO:200)表现出优异的性能,比 Hbeta(300)产生更多的轻质烯烃(49.8 wt%)和更高的 MAH 含量。这归因于增加的酸度和适当的形状选择性。与 Hbeta(4.4 wt%)相比,HZSM-5 (0.7 wt%)通过阻碍二次反应表现出更好的抗结焦性,限制焦炭前体的形成。由于较高的酸度,使用 HZSM-5(80)导致 MAHs 较高而轻质烯烃较低。将 Co 掺入 HZSM-5(200)中,虽然将轻质烯烃的产率略有降低(至 44.0 wt%),但显著提高了 MAH 的产量并提高了烯烃组成中丙烯的选择性。这些观察结果归因于Lewis 和 Brønsted 酸位的良好平衡共存,这刺激了碳正离子机制并诱导了 H 转移、环化、Diels-alder 和脱氢反应。建议在高硅和负载金属的 HZSM-5 催化剂上对塑料吸管进行催化热解,作为将塑料废料转化为有价值的轻质烯烃和 MAHs 的有效和可持续方法。