Zero-valent iron is not always effective in enhancing anaerobic digestion performance.
暂无分享,去创建一个
Z. Lei | Zhenya Zhang | Dan Liu | Weiwei Huang | Wenli Huang | Siyuan Wang | Hongqin Wang | Sichao Zheng | Fei Yang | Ziyin Ai
[1] Z. Lei,et al. Combined effect of zero valent iron and magnetite on semi-dry anaerobic digestion of swine manure. , 2021, Bioresource technology.
[2] Junya Zhang,et al. Zero valent iron improved methane production and specifically reduced aminoglycoside and tetracycline resistance genes in anaerobic digestion. , 2021, Waste management.
[3] Ying Xu,et al. Principles and advancements in improving anaerobic digestion of organic waste via direct interspecies electron transfer , 2021 .
[4] Kang Kang,et al. Effects of chlorine disinfectants on the microbial community structure and the performance of anaerobic digestion of swine manure. , 2021, Bioresource technology.
[5] Ruming Wang,et al. Carbon- and metal-based mediators modulate anaerobic methanogenesis and phenol removal: Focusing on stimulatory and inhibitory mechanism. , 2021, Journal of hazardous materials.
[6] Xin Kong,et al. Mini art review for zero valent iron application in anaerobic digestion and technical bottlenecks. , 2021, The Science of the total environment.
[7] I. Vyrides,et al. In situ biogas upgrading and enhancement of anaerobic digestion of cheese whey by addition of scrap or powder zero-valent iron (ZVI). , 2020, Journal of environmental management.
[8] R. Dong,et al. Dynamic evolution of humic acids during anaerobic digestion: Exploring an effective auxiliary agent for heavy metal remediation. , 2020, Bioresource technology.
[9] Yawei Wang,et al. Relieving ammonia inhibition by zero-valent iron (ZVI) dosing to enhance methanogenesis in the high solid anaerobic digestion of swine manure. , 2020, Waste management.
[10] I. Nopens,et al. Ammonia stress decreased biomarker genes of acetoclastic methanogenesis and second peak of production rates during anaerobic digestion of swine manure. , 2020, Bioresource technology.
[11] Xiaoming Li,et al. Enhanced anaerobic co-digestion of waste activated sludge and food waste by sulfidated microscale zerovalent iron: Insights in direct interspecies electron transfer mechanism. , 2020, Bioresource technology.
[12] H. Ngo,et al. Zero-valent iron addition in anaerobic dynamic membrane bioreactors for preconcentrated wastewater treatment: Performance and impact. , 2020, The Science of the total environment.
[13] Yan Zhou,et al. Direct interspecies electron transfer (DIET) can be suppressed under ammonia-stressed condition - Reevaluate the role of conductive materials. , 2020, Water research.
[14] T. Reichenauer,et al. Inhibition and stimulation of two perchloroethene degrading bacterial cultures by nano- and micro-scaled zero-valent iron particles. , 2020, The Science of the total environment.
[15] S. Heaven,et al. Ammonia inhibition and toxicity in anaerobic digestion: A critical review , 2019, Journal of Water Process Engineering.
[16] Fei Yang,et al. Enhancing hydrogenotrophic activities by zero-valent iron addition as an effective method to improve sulfadiazine removal during anaerobic digestion of swine manure. , 2019, Bioresource technology.
[17] Kazuya Watanabe,et al. Metatranscriptomic Evidence for Magnetite Nanoparticle-Stimulated Acetoclastic Methanogenesis under Continuous Agitation , 2019, Applied and Environmental Microbiology.
[18] Xiaofei Liang,et al. Effects of nanoscale zero-valent iron on the performance and the fate of antibiotic resistance genes during thermophilic and mesophilic anaerobic digestion of food waste. , 2019, Bioresource technology.
[19] Junlian Qiao,et al. Selenate removal by Fe0 coupled with ferrous iron, hydrogen peroxide, sulfidation, and weak magnetic field: A comparative study. , 2019, Water research.
[20] Zhao-hui Yang,et al. Impact of zero valent iron on blackwater anaerobic digestion. , 2019, Bioresource technology.
[21] Falong Jia,et al. Liquid Nitrogen Activation of Zero-Valent Iron and Its Enhanced Cr(VI) Removal Performance. , 2019, Environmental science & technology.
[22] Zhao-hui Yang,et al. Metagenomic analysis reveals the effects of long-term antibiotic pressure on sludge anaerobic digestion and antimicrobial resistance risk. , 2019, Bioresource technology.
[23] Z. Lei,et al. Weak magnetic field significantly enhances methane production from a digester supplemented with zero valent iron. , 2019, Bioresource technology.
[24] D. Lovley,et al. Iron Corrosion via Direct Metal-Microbe Electron Transfer , 2019, mBio.
[25] Z. Lei,et al. Enhanced biogasification from ammonia-rich swine manure pretreated by ammonia fermentation and air stripping , 2019, International Biodeterioration & Biodegradation.
[26] E. Trably,et al. Reversibility of hydrolysis inhibition at high hydrogen partial pressure in dry anaerobic digestion processes fed with wheat straw and inoculated with anaerobic granular sludge. , 2019, Waste management.
[27] F. Rezaei,et al. Effect of pH on Zero Valent Iron Performance in Heterogeneous Fenton and Fenton-Like Processes: A Review , 2018, Molecules.
[28] Fei Yang,et al. Enhanced anaerobic digestion of ammonia-rich swine manure by zero-valent iron: With special focus on the enhancement effect on hydrogenotrophic methanogenesis activity. , 2018, Bioresource technology.
[29] M. Loosdrecht,et al. Feasibility analysis of anaerobic digestion of excess sludge enhanced by iron: A review , 2018, Renewable and Sustainable Energy Reviews.
[30] Yongzhong Feng,et al. Linkage of kinetic parameters with process parameters and operational conditions during anaerobic digestion , 2017 .
[31] Chang-Ping Yu,et al. Application of nanoscale zero valent iron and iron powder during sludge anaerobic digestion: Impact on methane yield and pharmaceutical and personal care products degradation. , 2017, Journal of hazardous materials.
[32] Xin Kong,et al. Inhibiting excessive acidification using zero-valent iron in anaerobic digestion of food waste at high organic load rates. , 2016, Bioresource technology.
[33] Tong Zhang,et al. Cellular adhesiveness and cellulolytic capacity in Anaerolineae revealed by omics-based genome interpretation , 2016, Biotechnology for Biofuels.
[34] Zengqiang Zhang,et al. Rapid removal of selenate in a zero-valent iron/Fe3O4/Fe2+ synergetic system , 2016 .
[35] D. Stuckey,et al. Trace metal speciation and bioavailability in anaerobic digestion: A review. , 2016, Biotechnology advances.
[36] I. Lo,et al. The limitations of applying zero-valent iron technology in contaminants sequestration and the corresponding countermeasures: the development in zero-valent iron technology in the last two decades (1994-2014). , 2015, Water research.
[37] Donglei Wu,et al. Performance of a zero valent iron-based anaerobic system in swine wastewater treatment. , 2015, Journal of hazardous materials.
[38] D. Zitomer,et al. Relating Anaerobic Digestion Microbial Community and Process Function , 2015, Microbiology insights.
[39] Xie Quan,et al. Enhanced anaerobic digestion of waste activated sludge digestion by the addition of zero valent iron. , 2014, Water research.
[40] Rajinikanth Rajagopal,et al. A critical review on inhibition of anaerobic digestion process by excess ammonia. , 2013, Bioresource technology.
[41] Yan Ma,et al. The fate of antagonistic microorganisms and antimicrobial substances during anaerobic digestion of pig and dairy manure. , 2013, Bioresource technology.
[42] Xie Quan,et al. Adding Fe0 powder to enhance the anaerobic conversion of propionate to acetate , 2013 .
[43] Rui Li,et al. Technology of protein separation from whey wastewater by two-stage foam separation , 2011 .
[44] Jae Hac Ko,et al. Simultaneous addition of biochar and zero-valent iron to improve food waste anaerobic digestion , 2021 .
[45] F. Smith,et al. COLORIMETRIC METHOD FOR DETER-MINATION OF SUGAR AND RELATED SUBSTANCE , 1956 .