Alimohammadi Mahsa, Demirer Goksel N
School of Engineering and Technology, Central Michigan University, Mt. Pleasant, MI 48859 USA.
Institute for Great Lakes Research, Central Michigan University, Mt. Pleasant, MI 48859 USA.
J Environ Health Sci Eng. 2024 Jun 18;22(2):397-411. doi: 10.1007/s40201-024-00910-4. eCollection 2024 Dec.
Microplastic pollution has emerged as a global environmental concern, with pervasive contamination in terrestrial and aquatic ecosystems. This review paper delves into the intricate dynamics of microplastics within anaerobic digestion systems, addressing their occurrence, impact, and potential mitigation strategies. The occurrence of microplastics in anaerobic digesters is widespread, entering these systems through diverse inputs, such as sewage sludge, organic waste, and etc. Microplastics in anaerobic digestion have been associated with potential adverse impacts on biogas production, process performance, microbial communities, and degradation processes, though the relationship is complex and context dependent. This review highlights the urgent need for comprehensive research into the fate of microplastics within anaerobic digesters. Mitigation strategies offer promise in alleviating microplastic contamination, with advanced separation methods, innovative techniques such as magnetic micro-submarines, photocatalytic micro-motors, membrane bioreactors combined with activated carbon filters, rapid sand filtration, or conventional activated sludge, and disintegration-oriented techniques such as electrocatalysis, biodegradation, and thermal decomposition. Nonetheless, there is a significant knowledge gap that necessitates further research into the fate and long-term effects of microplastics in digestate. Collaborative efforts are crucial to addressing this emerging concern and ensuring the sustainability of anaerobic digestion systems in the face of microplastic challenges.
微塑料污染已成为全球环境问题,在陆地和水生生态系统中普遍存在。这篇综述文章深入探讨了厌氧消化系统中微塑料的复杂动态,探讨了它们的存在、影响以及潜在的缓解策略。厌氧消化器中微塑料的存在很普遍,通过各种输入进入这些系统,如污水污泥、有机废物等。厌氧消化中的微塑料与对沼气生产、工艺性能、微生物群落和降解过程的潜在不利影响有关,尽管这种关系很复杂且取决于具体情况。这篇综述强调了对厌氧消化器中微塑料归宿进行全面研究的迫切需求。缓解策略有望减轻微塑料污染,包括先进的分离方法、磁性微潜艇、光催化微马达等创新技术、膜生物反应器与活性炭过滤器、快速砂滤或传统活性污泥相结合,以及电催化、生物降解和热分解等以分解为导向的技术。尽管如此,仍存在重大知识空白,需要进一步研究微塑料在消化液中的归宿和长期影响。合作努力对于应对这一新兴问题并确保厌氧消化系统在面对微塑料挑战时的可持续性至关重要。