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生态学杂志 ›› 2026, Vol. 45 ›› Issue (8): 2699-2708.doi: 10.13292/j.1000-4890.202608.037

• 研究论文 • 上一篇    下一篇

铁铝改性牡蛎壳基质强化微生物诱导钙沉淀除氟性能及机理

戴以乐1,管勇2,毛昕3,王雪琪1,宋京昕1,孙俊琦1,王森1,孔范龙1*   

  1. 1青岛大学环境与地理科学学院, 山东青岛 266071; 2青岛地质工程勘察院(青岛地质勘查开发局), 山东青岛 266101; 3中和环境工程有限公司, 山东青岛 266000)
  • 出版日期:2026-08-10 发布日期:2026-08-19

Fluoride removal performance and mechanism of microbially induced calcite precipitation enhanced by Fe-Al modified oyster shell substrate.

DAI Yile1, GUAN Yong2, MAO Xin3, WANG Xueqi1, SONG Jingxin1, SUN Junqi1, WANG Sen1, KONG Fanlong1*   

  1. (1College of Environmental and Geographical Sciences, Qingdao University, Qingdao 266071, Shandong, China; 2Qingdao Geo-Engineering Surveying Institute (Qingdao Geological Exploration Development Bureau), Qingdao 266101, Shandong, China; 3Zhonghe Environmental Engineering Co., Ltd, Qingdao 266000, Shandong, China).


  • Online:2026-08-10 Published:2026-08-19

摘要: 相对于其他技术,微生物除氟具有绿色、低成本等优势,但氟会抑制微生物代谢关键酶的活性,从而降低去除效果。本研究利用牡蛎壳粉制备了载体,并通过铁铝改性提高碳酸酐酶(CA)活性,以强化微生物诱导钙沉淀(MICP)除F-过程。正交实验结果表明,在煅烧温度为700 ℃、Fe∶Al=2∶1、牡蛎壳粉与NaAlg及NH4HCO3质量比为4∶0.1∶0.2时,F-的去除效果最佳,去除率可达92.0%,且在5次循环再生后去除率仍可达81.5%,表现出良好的再生性能。将筛选出的铁铝改性基质用于强化MICP,F-、NO3--N和TP的去除率分别可达84.9%、100%和53.5%。结合CA活性分析和生物沉淀表征可知,铁铝改性基质强化MICP除F-的机制可归结为Fe和Al与F-发生络合反应降低了溶液中F-的毒性,提高了微生物对F-的耐受性,显著增强了CA的活性,促进了MICP过程,实现F-、NO3--N和TP的同步去除。本研究通过基质制备与微生物处理相结合,为处理含F-水体提供了高效可行的理论依据和技术支撑。


关键词: 除氟, 脱氮除磷, 铁铝改性基质, 微生物诱导钙沉淀

Abstract: Microbial defluorination has the advantages of green and low-cost relative to other technologies, but  F- may inhibit the activities of key enzymes of microbial metabolism, thus reducing the removal effect. In this study, a carrier was prepared using oyster shell powder and the activity of carbonic anhydrase (CA) was enhanced through Fe-Al modification, to strengthen the microbially induced calcium precipitation (MICP) process for F- removal. The orthogonal experiment results showed that the removal effect of F- was the best (up to 92.0%) when the calcination temperature was 700 ℃, Fe∶Al=2∶1, and the mass ratio of oyster shell powder to sodium alginate (NaAlg) and ammonium bicarbonate (NH4HCO3) was 4∶0.1∶0.2. Moreover, after five cycles of regeneration, the removal efficiency could reach 81.5%, showing good regeneration performance. The screened Fe-Al modified substrate was used to enhance MICP for F- removal, and the removal efficiencies of F-, NO3--N and TP could reach 84.9%, 100% and 53.5%, respectively. By combining enzyme activity analysis and biological precipitation characterization, the mechanism by which the Fe-Al modified substrate enhanced MICP for F- removal could be attributed to the complexation reaction between Fe and Al and F-. Such interaction reduced the toxicity of F- in the solution, improved the tolerance of microorganisms to F-, and significantly enhanced the activity of microbial CA, thus achieving the simultaneous removal of F-, NO3--N and TP through promoting the MICP process. This study provided theoretical basis and efficient and feasible technical support for treating water containing F- through the combination of substrate preparation and microbial treatment.


Key words: defluorination, nitrogen and phosphorus removal, Fe-Al modified substrate, microbially induced calcium precipitation