de Souza Acácio Silva, Ferreira Patricia Garcia, de Jesus Iva Souza, de Oliveira Rafael Portugal Rizzo Franco, de Carvalho Alcione Silva, Futuro Debora Omena, Ferreira Vitor Francisco
Programa de Pós-Graduação em Ciências Aplicadas a Produtos para a Saúde, Laboratório de Inovação em Química e Tecnologia Farmacêutica, Faculdade de Farmácia, Universidade Federal Fluminense, Rua Doutor Mario Vianna, 523, Santa Rosa, Niterói 24241-000, RJ, Brazil.
Molecules. 2024 Dec 29;30(1):87. doi: 10.3390/molecules30010087.
This paper highlights the complexity and urgency of addressing plastic pollution, drawing attention to the environmental challenges posed by improperly discarded plastics. Petroleum-based plastic polymers, with their remarkable range of physical properties, have revolutionized industries worldwide. Their versatility-from flexible to rigid and hydrophilic to hydrophobic-has fueled an ever-growing demand. However, their versatility has also contributed to a massive global waste problem as plastics pervade virtually every ecosystem, from the depths of oceans to the most remote terrestrial landscapes. Plastic pollution manifests not just as visible waste-such as fishing nets, bottles, and garbage bags-but also as microplastics, infiltrating food chains and freshwater sources. This crisis is exacerbated by the unsustainable linear model of plastic production and consumption, which prioritizes convenience over long-term environmental health. The mismanagement of plastic waste not only pollutes ecosystems but also releases greenhouse gases like carbon dioxide during degradation and incineration, thereby complicating efforts to achieve global climate and sustainability goals. Given that mechanical recycling only addresses a fraction of macroplastics, innovative approaches are needed to improve this process. Methods like pyrolysis and hydrogenolysis offer promising solutions by enabling the chemical transformation and depolymerization of plastics into reusable materials or valuable chemical feedstocks. These advanced recycling methods can support a circular economy by reducing waste and creating high-value products. In this article, the focus on pyrolysis and hydrogenolysis underscores the need to move beyond traditional recycling. These methods exemplify the potential for science and technology to mitigate plastic pollution while aligning with sustainability objectives. Recent advances in the pyrolysis and hydrogenolysis of polyolefins focus on their potential for advanced recycling, breaking down plastics at a molecular level to create feedstocks for new products or fuels. Pyrolysis produces pyrolysis oil and syngas, with applications in renewable energy and chemicals. However, some challenges of this process include scalability, feedstock variety, and standardization, as well as environmental concerns about emissions. Companies like Shell and ExxonMobil are investing heavily to overcome these barriers and improve recycling efficiencies. By leveraging these transformative strategies, we can reimagine the lifecycle of plastics and address one of the most pressing environmental challenges of our time. This review updates the knowledge of the fields of pyrolysis and hydrogenolysis of plastics derived from polyolefins based on the most recent works available in the literature, highlighting the techniques used, the types of products obtained, and the highest yields.
本文强调了应对塑料污染的复杂性和紧迫性,提请人们关注不当丢弃塑料所带来的环境挑战。石油基塑料聚合物具有一系列卓越的物理性能,彻底改变了全球各行各业。它们的多功能性——从柔性到刚性,从亲水性到疏水性——推动了需求的不断增长。然而,它们的多功能性也导致了一个巨大的全球废物问题,因为塑料几乎渗透到了每一个生态系统,从海洋深处到最偏远的陆地景观。塑料污染不仅表现为可见的废物,如渔网、瓶子和垃圾袋,还表现为微塑料,渗透到食物链和淡水源中。塑料生产和消费的不可持续线性模式加剧了这场危机,这种模式将便利性置于长期环境健康之上。塑料废物管理不善不仅污染生态系统,还会在降解和焚烧过程中释放二氧化碳等温室气体,从而使实现全球气候和可持续发展目标的努力变得更加复杂。鉴于机械回收仅能处理一部分宏观塑料,需要创新方法来改进这一过程。热解和氢解等方法通过使塑料化学转化和解聚为可重复使用的材料或有价值的化学原料,提供了有前景的解决方案。这些先进的回收方法可以通过减少废物和创造高价值产品来支持循环经济。在本文中,对热解和氢解的关注强调了超越传统回收的必要性。这些方法体现了科学技术在减轻塑料污染同时符合可持续发展目标方面的潜力。聚烯烃热解和氢解的最新进展集中在它们进行先进回收的潜力上,即在分子水平上分解塑料以制造新产品或燃料的原料。热解产生热解油和合成气,可用于可再生能源和化学品领域。然而,这一过程面临一些挑战,包括可扩展性、原料种类、标准化,以及对排放的环境担忧。壳牌和埃克森美孚等公司正在大力投资以克服这些障碍并提高回收效率。通过利用这些变革性策略,我们可以重新构想塑料的生命周期,应对我们这个时代最紧迫的环境挑战之一。本综述根据文献中最新的研究成果,更新了基于聚烯烃的塑料热解和氢解领域的知识,突出了所使用的技术、获得的产品类型以及最高产率。