Guangzhou Key Laboratory Environmental Catalysis and Pollution Control, Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control, School of Environmental Science and Engineering, Institute of Environmental Health and Pollution Control, Guangdong University of Technology, Guangzhou 510006, China.
Guangzhou Key Laboratory Environmental Catalysis and Pollution Control, Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control, School of Environmental Science and Engineering, Institute of Environmental Health and Pollution Control, Guangdong University of Technology, Guangzhou 510006, China.
Environ Res. 2024 Apr 15;247:118158. doi: 10.1016/j.envres.2024.118158. Epub 2024 Jan 13.
Existing wastewater treatment technologies face the key challenge of simultaneously removing emerging contaminants and nutrients from wastewater efficiently, with a simplified technological process and minimized operational costs. In this study, a novel alginate-embedded magnetic biochar-anoxygenic photosynthetic bacteria composite microspheres (CA-MBC-PSB microspheres) was prepared for efficient, cost-effective and one-step removal of antibiotics and NH-N from wastewater. Our results demonstrated that the CA-MBC-PSB microspheres removed 97.23% of sulfadiazine (SDZ) within 7 h and 91% of NH-N within 12 h, which were 21.23% and 38% higher than those achieved by pure calcium alginate-Rhodopseudomonas palustris microspheres (53% and 45.7%), respectively. The enhanced SDZ and NH-N removal were attributed to the enhanced photoheterotrophic metabolism and excretion of extracellular photosensitive active substances from R. Palustris through the photo-bioelectrochemical interaction between R. Palustris and magnetic biochar. The long-term pollutants removal performance of the CA-MBC-PSB microspheres was not deteriorated but continuously improved with increasing ruse cycles with a simultaneous removal efficiency of 99% for SDZ and 92% for NH-N after three cycles. The excellent stability and reusability were due to the fact that calcium alginate acts as an encapsulating agent preventing the loss and contamination of R. palustris biomass. The CA-MBC-PSB microspheres also exhibited excellent performance for simultaneous removal of SDZ (89% in 7 h) and NH-N (90.7% in 12 h) from the secondary effluent of wastewater treatment plant, indicating the stable and efficient performance of CA-MBC-PSB microspheres in practical wastewater treatment.
现有的废水处理技术面临着一个关键的挑战,即需要高效地从废水中同时去除新兴污染物和营养物质,同时简化技术流程并降低运营成本。在本研究中,制备了一种新型的藻酸盐包埋磁性生物炭-兼性光合细菌复合微球(CA-MBC-PSB 微球),用于从废水中高效、经济地一步去除抗生素和 NH-N。我们的结果表明,CA-MBC-PSB 微球在 7 小时内去除了 97.23%的磺胺嘧啶(SDZ),在 12 小时内去除了 91%的 NH-N,分别比纯藻酸钠-沼泽红假单胞菌微球(53%和 45.7%)高 21.23%和 38%。增强的 SDZ 和 NH-N 去除归因于通过 R. Palustris 和磁性生物炭之间的光电生物电化学相互作用,增强了 R. Palustris 的光异养代谢和胞外光敏活性物质的排泄。CA-MBC-PSB 微球的长期污染物去除性能并未随着使用循环次数的增加而恶化,反而不断提高,在三个循环后,SDZ 的去除效率达到 99%,NH-N 的去除效率达到 92%。优异的稳定性和可重复使用性归因于藻酸盐作为包封剂的作用,防止了 R. palustris 生物量的损失和污染。CA-MBC-PSB 微球还表现出从污水处理厂二级出水同时去除 SDZ(7 小时内 89%)和 NH-N(12 小时内 90.7%)的优异性能,表明 CA-MBC-PSB 微球在实际废水处理中具有稳定高效的性能。