Rare earth wastewater with high concentrations of NH4+-N poses serious environmental challenges. Conventional treatment converts NH4+-N into N2, leading to nitrogen resources loss. This study proposes a hydrogen-oxidizing bacteria (HOB)-based strategy to convert NH4+-N in real wastewater into microbial protein (MP). Based on the finding that HOB growth was inhibited in real wastewater, the effects of excess (S, Ca) and deficient (Mg, K, P) elements were investigated. P deficiency, rather than excess S/Ca or Mg/K deficiency, was identified as the primary factor limiting HOB performance. P addition increased cell dry weight and MP yield by 66 % and 71 %, respectively, and enhanced CO2 fixation and NH4+-N conversion rates. Microbial community and functional enzyme analyses revealed that P addition selectively enriched Paracoccus, which may be associated with the predicted increase in electron transport-related enzymes (EC: 1.9.3.1, 3.6.3.34), promoting H2 oxidation and nitrogen assimilation and driving microbial growth. Mg, K, and P synergistically further improved the NH4+-N recovery and carbon utilization rate. Moreover, HOB biomass showed high affinity for rare earth elements (REEs), with recovery ratio more than 88 % for Y, Dy and Er. This work establishes a process for NH4+-N recovery, MP synthesis, and REE recovery. We highlight the role of nutrient balancing, particularly P availability, in optimizing this bio-recovery platform for high-value utilization of mining wastewater.
Metabolic pathway analysis indicated that the Schorl/H2O2 oxidation effluent markedly enhanced the abundance of peroxisomes, which help mitigate oxidative stress, and enriched pathways related to phosphonate and phosphinate metabolism.
Yu-Ting Wang, Jin-Mei Wen, Shu-Yao Wang et al.· Biodegradation· 0 citations
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Anaerobic digestate is rich in nitrogen, and its treatment poses substantial challenges to conventional processes due to its ammonium concentration, high alkalinity, and low biodegradable carbon content. In this study, microbial fuel cells (MFCs) were investigated for the treatment of digestate....
Xizi Long, Long Xiao, Xiang-Peng Zhai et al.· Bioelectricity· 0 citations
Cola wastewater, generated during the production of sugar-containing beverages, is a low-toxicity effluent rich in organic matter and may serve as a promising external carbon source for biological denitrification. However, its phosphate content often exceeds the relevant quality limit, and its low carbon bioavailabilit...
Yanxia Xu, Yu-Bing Chen, Liang Song et al.· Bioresource Technology· 0 citations
Under the "double carbon" goal, anaerobic digestion (AD) is irreplaceable for organic solid waste resource utilization, but ubiquitous microplastics (MPs) in substrates severely impair AD performance. Studies on regulating PE-MP-containing AD systems via zero valent iron (ZVI) remain scarce, so this study incorporated...
Guo-Xu Ao, Zhao-Xuan Wang, Yue-Qi Shi et al.· Environmental Science and Te...· 0 citations
Achieving cost-effective advanced nitrogen removal with minimal external carbon input remains a key challenge in wastewater treatment plants processing high-strength ammonium wastewater with a low carbon-to-nitrogen (C/N) ratio. In this study, an anaerobic/micro-aerobic/anoxic (AMA) system was established to treat such...
Zi-Jing An, Chun-Rong Yan, Jian-Jun Cai et al.· Environmental Research· 0 citations