Biological Systems and Engineering Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.
BioVeritas, LLC, Bryan, TX 77807, USA.
J Ind Microbiol Biotechnol. 2024 Jan 9;51. doi: 10.1093/jimb/kuae040.
This publication highlights the latest advancements in the field of energy and nutrient recovery from organics rich municipal and industrial waste and wastewater. Energy and carbon rich waste streams are multifaceted, including municipal solid waste, industrial waste, agricultural by-products and residues, beached or residual seaweed biomass from post-harvest processing, and food waste, and are valuable resources to overcome current limitations with sustainable feedstock supply chains for biorefining approaches. The emphasis will be on the most recent scientific progress in the area, including the development of new and innovative technologies, such as microbial processes and the role of biofilms for the degradation of organic pollutants in wastewater, as well as the production of biofuels and value-added products from organic waste and wastewater streams. The carboxylate platform, which employs microbiomes to produce mixed carboxylic acids through methane-arrested anaerobic digestion, is the focus as a new conversion technology. Nutrient recycling from conventional waste streams such as wastewater and digestate, and the energetic valorization of such streams will also be discussed. The selected technologies significantly contribute to advanced waste and wastewater treatment and support the recovery and utilization of carboxylic acids as the basis to produce many useful and valuable products, including food and feed preservatives, human and animal health supplements, solvents, plasticizers, lubricants, and even biofuels such as sustainable aviation fuel.
ONE-SENTENCE SUMMARY: Multifaceted waste streams as the basis for resource recovery are essential to achieve environmental sustainability in a circular economy, and require the development of next-generation waste treatment technologies leveraging a highly adaptive mixed microbial community approach to produce new biochemicals, biomaterials, and biofuels from carbon-rich organic waste streams.
本出版物重点介绍了从富含有机物的城市和工业废物和废水中回收能源和营养物质的最新进展。能源和碳丰富的废物流是多方面的,包括城市固体废物、工业废物、农业副产品和残留物、从收获后加工中产生的海滩或残留的海藻生物质,以及食物废物,它们是克服当前可持续原料供应对于生物炼制方法的限制的有价值的资源。重点将放在该领域最新的科学进展上,包括开发新的创新技术,例如微生物过程和生物膜在废水有机污染物降解中的作用,以及从有机废物和废水中生产生物燃料和增值产品。羧酸盐平台利用微生物组通过甲烷截留厌氧消化来生产混合羧酸,这是一种新的转化技术,是重点。还将讨论从传统废物流(如废水和消化物)中回收营养物质以及对这些废物流进行能量利用。所选技术为先进的废物和废水处理做出了重大贡献,并支持回收和利用羧酸作为生产许多有用和有价值的产品的基础,包括食品和饲料防腐剂、人类和动物健康补充剂、溶剂、增塑剂、润滑剂,甚至是可持续航空燃料等生物燃料。
作为资源回收基础的多方面废物对于实现循环经济中的环境可持续性至关重要,需要开发利用高度适应性混合微生物群落的下一代废物处理技术,从富含碳的有机废物流中生产新的生化物质、生物材料和生物燃料。