将塑料废弃物催化热解产生的废催化剂用作固体功能材料

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引用次数: 0

摘要

由于人口增长和消费行为的转变,塑料消费量激增。升级再造旨在通过寻找创新的再利用策略来解决塑料垃圾问题。通过将废塑料整合到新产品和材料中,升级再造支持了一种更可持续、更环保的经济模式。这减少了与塑料消费相关的整体环境足迹,包括二氧化碳排放量。此外,将废塑料转化为碳纳米管可有效固碳。这意味着碳被捕获并以稳定的形式储存起来,防止其作为二氧化碳释放到大气中。这直接有助于减少净排放量。最近,人们对升级再循环战略的兴趣包括生产目标导向催化剂,将塑料废料转化为嵌入废催化剂的碳纳米管,为各种应用提供了潜力。然而,该领域的研究比较分散,缺乏全面的结论。本综述对塑料废物热解产生的废催化剂的使用进行了批判性研究,并确定了其在实际应用中的适用性。它建议重点关注塑料废弃物催化热解的目标导向催化剂,因为这些催化剂具有良好的氢气产率,并可在目标应用中进行热解后使用。与商用催化剂相比,这些催化剂的独特结构提高了性能,但后处理对于去除杂质以获得最佳性能至关重要。通过采取行动应对气候变化,并保证人们能够获得负担得起的、清洁的和可持续的能源,将塑料废弃物升级再造为 CNTs-金属复合材料可极大地促进可持续发展目标 7、9、12 和 13 的实现。本综述旨在为目前刚接触该主题并希望继续在该领域开展研究的研究人员提供帮助。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The application of spent catalysts from catalytic pyrolysis of plastic waste as solid functional materials

The application of spent catalysts from catalytic pyrolysis of plastic waste as solid functional materials

Plastic consumption has surged due to population growth and shifts in consumer behavior. Upcycling aims to address plastic waste by finding innovative reuse strategies. By integrating waste plastic into new products and materials, upcycling supports a more sustainable and environmentally friendly economic model. This reduces the overall environmental footprint, including CO2 emissions, associated with plastic consumption. Moreover, converting plastic waste into carbon nanotubes, can effectively sequester carbon. This means that carbon is captured and stored in a stable form, preventing its release into the atmosphere as CO2. This contributes directly to reducing net emissions. Recent interest in upcycling strategies includes producing target-oriented catalysts to reform plastic waste into carbon nanotubes embedded spent catalysts, offering potential for various applications. However, research in this area is scattered and lacks comprehensive conclusions. This review critically examines the use of spent catalysts from plastic waste pyrolysis and identifies their suitability for practical applications. It suggests focusing on the catalytic pyrolysis of plastic waste for target-oriented catalysts, as they offer good hydrogen yield and post-pyrolysis use in targeted applications. The unique structure of these catalysts enhances performance compared to commercial alternatives, but post-treatment is crucial to remove impurities for optimal performance. The upcycling of plastic waste into CNTs-metal composites substantially contributes to Sustainable Development Goals 7, 9, 12 and 13, by taking action to combat climate change and by guaranteeing access to affordable, clean, and sustainable energy. This review aims to be helpful for researchers who are currently new to the topic and want to continue research in this domain.

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