生物炼制
普通小球藻
生物能源
生物转化
生物量(生态学)
生物制氢
光合反应器
渗滤液
营养物
化学
化学需氧量
光合作用
暗发酵
制浆造纸工业
食品科学
发酵
环境化学
废水
生物燃料
原材料
植物
生物技术
生物
环境工程
环境科学
生物化学
藻类
生态学
制氢
有机化学
催化作用
工程类
作者
Haixing Chang,Haowen Feng,Rupeng Wang,Xian‐Ming Zhang,Jinghan Wang,Chunlan Li,Yuanbo Zhang,Lin Li,Shih‐Hsin Ho
出处
期刊:Water Research
[Elsevier]
日期:2023-03-01
卷期号:231: 119578-119578
被引量:31
标识
DOI:10.1016/j.watres.2023.119578
摘要
Bioconversion of nutrients and energy from landfill leachate (LL) to biohydrogen and volatile fatty acids (VFAs) using dark fermentation (DF) is a promising technique for developing a sustainable ecosystem. However, poor performance of DF caused by vulnerable fermentative bacteria vitality and strong LL toxicity significantly hinder its commercialization. Herein, an integrated technique linking microalgae photosynthesis and DF was proposed, in which mixed microalgae were applied to robustly reclaim nutrients and chemical oxygen demand (COD) from LL. Then, microalgae biomass was fermented into biohydrogen and VFAs using the DF process. Underlying synergistic mechanisms of the interaction of Scenedesmus obliquus and Chlorella vulgaris resulting from the functioning of extracellular polymeric substances (EPS) were discussed in detail. For better absorption of nutrients from LL, the mixed microalgae secreted obviously more EPS than pure microalgae, which played vital roles in the assimilation of cellular nutrients by forming more negative zeta potential and secreting more tyrosine-/tryptophan-family proteins in EPS. Besides, mixed microalgae produced more intracellular proteins and carbohydrates than the pure microalgae, thereby providing more feedstock for DF and achieving higher energy yield of 10.80 kJ/L than 6.64 kJ/L that was obtained when pure microalgae were used. Moreover, the energy conversion efficiency of 7.75% was higher for mixed microalgae than 4.77% that was obtained for pure microalgae. This work may inspire efficient disposal of LL and production of bioenergy, together with filling the knowledge gaps of synergistic mechanisms of dual microalgal interactions.
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