College of Chemistry and Chemical Engineering, Chongqing University of Technology, Chongqing 400054, China; Shanghai Technical Service Platform for Pollution Control and Resource Utilization of Organic Wastes, Shanghai Key Laboratory of Atmospheric Particle Pollution and Prevention (LAP3), Department of Environmental Science and Engineering, Fudan University, Shanghai 200438, China.
College of Chemistry and Chemical Engineering, Chongqing University of Technology, Chongqing 400054, China.
Sci Total Environ. 2022 Apr 1;815:152663. doi: 10.1016/j.scitotenv.2021.152663. Epub 2021 Dec 28.
Landfill leachate (LL), especially the reverse osmosis concentrate (ROC), is a societal burden due to high toxicity but may have intrinsic values attributing to copious nutrients and organics. ROC bioremediation by microalgae has attracted much attentions benefiting from its extra advantage of bioenergy production. However, efficient microalgae cultivation with ROC is still a challenging task attributing to notorious ROC characteristics, like high chromaticity and toxicity. To alleviate these negative influences, a technique integrating granular activated carbon (GAC) pretreatment and microalgae bioremediation was proposed, with which nitrogen and phosphorus removal efficiencies achieved 100% along with an optimized microalgal biomass concentration of 1.44 g/L and lipid yield of 482.4 mg/L. Furthermore, a total volumetric energy yield of 33.6 kJ/L was acquired, which was conducive to realize energy valorization. The visualization evidence of three-dimensional fluorescence spectroscopy revealed chromaticity degradation mechanism of ROC as humic acids reduction and transfer to family of soluble microbial by-products. Meanwhile, contributions of GAC adsorption and microalgae assimilation on nutrients removal were analyzed. Together, this work provides a promising method and valuable information for ROC bioremediation with microalgae.
垃圾渗滤液(LL),特别是反渗透浓缩液(ROC),由于其高毒性而成为社会负担,但由于含有丰富的营养物质和有机物,也可能具有内在价值。由于生物能源生产的额外优势,利用微藻进行 ROC 生物修复已经引起了广泛关注。然而,利用 ROC 进行有效的微藻培养仍然是一项具有挑战性的任务,这归因于 ROC 具有高色度和毒性等不良特性。为了减轻这些负面影响,提出了一种集成颗粒活性炭(GAC)预处理和微藻生物修复的技术,该技术的氮磷去除效率达到 100%,同时优化了微藻生物质浓度为 1.44 g/L,脂质产率为 482.4 mg/L。此外,获得了 33.6 kJ/L 的总容积能量产量,有利于实现能量增值。三维荧光光谱的可视化证据揭示了 ROC 的色度降解机制,即腐殖酸的减少和向可溶性微生物副产物家族的转移。同时,分析了 GAC 吸附和微藻对营养物质去除的贡献。总之,这项工作为利用微藻进行 ROC 生物修复提供了一种有前途的方法和有价值的信息。