Ali Sameh Samir, Abdelkarim Esraa A, Elsamahy Tamer, Al-Tohamy Rania, Li Fanghua, Kornaros Michael, Zuorro Antonio, Zhu Daochen, Sun Jianzhong
Biofuels Institute, School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang, 212013, PR China.
Botany Department, Faculty of Science, Tanta University, Tanta, 31527, Egypt.
Environ Sci Ecotechnol. 2023 Feb 19;15:100254. doi: 10.1016/j.ese.2023.100254. eCollection 2023 Jul.
The current transition to sustainability and the circular economy can be viewed as a socio-technical response to environmental impacts and the need to enhance the overall performance of the linear production and consumption paradigm. The concept of biowaste refineries as a feasible alternative to petroleum refineries has gained popularity. Biowaste has become an important raw material source for developing bioproducts and biofuels. Therefore, effective environmental biowaste management systems for the production of bioproducts and biofuels are crucial and can be employed as pillars of a circular economy. Bioplastics, typically plastics manufactured from bio-based polymers, stand to contribute to more sustainable commercial plastic life cycles as part of a circular economy in which virgin polymers are made from renewable or recycled raw materials. Various frameworks and strategies are utilized to model and illustrate additional patterns in fossil fuel and bioplastic feedstock prices for various governments' long-term policies. This review paper highlights the harmful impacts of fossil-based plastic on the environment and human health, as well as the mass need for eco-friendly alternatives such as biodegradable bioplastics. Utilizing new types of bioplastics derived from renewable resources (e.g., biowastes, agricultural wastes, or microalgae) and choosing the appropriate end-of-life option (e.g., anaerobic digestion) may be the right direction to ensure the sustainability of bioplastic production. Clear regulation and financial incentives are still required to scale from niche polymers to large-scale bioplastic market applications with a truly sustainable impact.
当前向可持续发展和循环经济的转型可被视为对环境影响以及提升线性生产和消费模式整体绩效需求的一种社会技术回应。生物废弃物精炼厂作为炼油厂可行替代方案的概念已受到广泛关注。生物废弃物已成为开发生物产品和生物燃料的重要原料来源。因此,用于生产生物产品和生物燃料的有效的环境生物废弃物管理系统至关重要,可作为循环经济的支柱。生物塑料,通常是由生物基聚合物制造的塑料,作为循环经济的一部分,有望为更可持续的商业塑料生命周期做出贡献,在这种循环经济中,原生聚合物由可再生或回收原料制成。各种框架和策略被用于为各国政府的长期政策模拟和说明化石燃料和生物塑料原料价格的其他模式。这篇综述文章强调了化石基塑料对环境和人类健康的有害影响,以及对可生物降解生物塑料等环保替代品的大量需求。利用源自可再生资源(如生物废弃物、农业废弃物或微藻)的新型生物塑料并选择合适的生命周期结束选项(如厌氧消化)可能是确保生物塑料生产可持续性的正确方向。从小众聚合物扩大到具有真正可持续影响的大规模生物塑料市场应用仍需要明确的监管和财政激励措施。