Screening of biohydrogen production based on dark fermentation in the presence of nano-sized Fe2O3 doped metal oxide additives
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[1] Priyan Rai,et al. Evaluation of low cost immobilized support matrices in augmentation of biohydrogen potential in dark fermentation process using B. licheniformis AP1 , 2022, Fuel.
[2] Fengshan Zhang,et al. Manganese ferrite nanoparticles enhanced biohydrogen production from mesophilic and thermophilic dark fermentation , 2021, Energy Reports.
[3] S. Kagawa,et al. Environmental and energy life cycle analyses of passenger vehicle systems using fossil fuel-derived hydrogen , 2021, International Journal of Hydrogen Energy.
[4] Jishi Zhang,et al. Comparison ofcopper and aluminum doped cobalt ferrate nanoparticles for improving biohydrogen production. , 2021, Bioresource technology.
[5] M. Srivastava,et al. Co-fermentation of residual algal biomass and glucose under the influence of Fe3O4 nanoparticles to enhance biohydrogen production under dark mode. , 2021, Bioresource technology.
[6] Jishi Zhang,et al. Cobalt ferrate nanoparticles improved dark fermentation for hydrogen evolution , 2021 .
[7] V. Paolini,et al. Study of the interrelationship between nano-TiO2 addition and photo-fermentative bio-hydrogen production of corn straw. , 2021, Bioresource technology.
[8] F. Boshagh. Measurement methods of carbohydrates in dark fermentative hydrogen production- A review , 2021, International Journal of Hydrogen Energy.
[9] Guandong Su,et al. Enhancing filter cake removal by engineering parameter optimization for clean development of fossil hydrogen energy: A numerical simulation , 2021 .
[10] A. Teplyakov,et al. XPS characterization of cobalt impregnated SiO2 and γ‐Al2O3 , 2021, Surface and Interface Analysis.
[11] C. V. Rao,et al. Renewable biohydrogen production from lignocellulosic biomass using fermentation and integration of systems with other energy generation technologies. , 2020, The Science of the total environment.
[12] Jianlong Wang,et al. Recent advance in inhibition of dark fermentative hydrogen production , 2020 .
[13] D. Das,et al. Optimization for simultaneous enhancement of biobutanol and biohydrogen production , 2020 .
[14] Omprakash Sarkar,et al. Renewable hydrogen production by dark-fermentation: Current status, challenges and perspectives. , 2020, Bioresource technology.
[15] A. Pugazhendhi,et al. Comparative effect of silver nanoparticles (AgNPs) derived from actinomycetes and henna on biohydrogen production by Clostridium beijerinckii (KTCC1737) , 2020, International Journal of Energy Research.
[16] A. Trchounian,et al. The prospects of brewery waste application in biohydrogen production by photofermentation of Rhodobacter sphaeroides , 2020 .
[17] Jun Cheng,et al. Improving hydrogen and methane co-generation in cascading dark fermentation and anaerobic digestion: The effect of magnetite nanoparticles on microbial electron transfer and syntrophism , 2020 .
[18] B. Filiz,et al. The role of catalyst support on activity of copper oxide nanoparticles for reduction of 4-nitrophenol , 2020 .
[19] A. Pugazhendhi,et al. Optimal immobilization of Trichoderma asperellum laccase on polymer coated Fe3O4@SiO2 nanoparticles for enhanced biohydrogen production from delignified lignocellulosic biomass , 2020 .
[20] Duu-Jong Lee,et al. Role of L-cysteine and iron oxide nanoparticle in affecting hydrogen yield potential and electronic distribution in biohydrogen production from dark fermentation effluents by photo-fermentation , 2020 .
[21] R. Sen,et al. Concomitant hydrogen and butanol production via co-digestion of organic wastewater and nitrogenous residues , 2020 .
[22] P. Show,et al. Ferric oxide/date seed activated carbon nanocomposites mediated dark fermentation of date fruit wastes for enriched biohydrogen production , 2020 .
[23] Ibrahim Dincer,et al. Covid‐19 coronavirus: Closing carbon age, but opening hydrogen age , 2020, International journal of energy research.
[24] Guandong Su,et al. Enhanced direct fermentation from food waste to butanol and hydrogen by an amylolytic Clostridium , 2020, Renewable Energy.
[25] Smita S. Kumar,et al. Green technology for sustainable biohydrogen production (waste to energy): A review. , 2020, The Science of the total environment.
[26] V. Gupta,et al. Advances in nanomaterials induced biohydrogen production using waste biomass. , 2020, Bioresource technology.
[27] Sunil Kumar,et al. Waste based hydrogen production for circular bioeconomy: Current status and future directions. , 2020, Bioresource technology.
[28] S. Rezaee,et al. Characterization of Fe2O3 thin film on highly oriented pyrolytic graphite by AFM, Ellipsometry and XPS , 2019, Applied Surface Science.
[29] R. Meijboom,et al. Noble and Base-Metal Nanoparticles Supported on Mesoporous Metal Oxides: Efficient Catalysts for the Selective Hydrogenation of Levulinic Acid to γ-Valerolactone , 2019, Catalysis Letters.
[30] Emre Oguz Koroglu,et al. An integrated system development including PEM fuel cell/biogas purification during acidogenic biohydrogen production from dairy wastewater , 2019, International Journal of Hydrogen Energy.
[31] Hongxia Liu,et al. Improved resistive switching characteristics of atomic layer deposited Al2O3/La2O3/Al2O3 multi-stacked films with Al+ implantation , 2019, Journal of Materials Science: Materials in Electronics.
[32] Jianlong Wang,et al. Enhanced biohydrogen production from macroalgae by zero-valent iron nanoparticles: Insights into microbial and metabolites distribution. , 2019, Bioresource technology.
[33] Gopalakrishnan Kumar,et al. Application of nanotechnology in dark fermentation for enhanced biohydrogen production using inorganic nanoparticles , 2019, International Journal of Hydrogen Energy.
[34] Guangzhi Sun,et al. A Review of the Enhancement of Bio-Hydrogen Generation by Chemicals Addition , 2019, Catalysts.
[35] Peidong Yang,et al. Cytoprotective metal-organic frameworks for anaerobic bacteria , 2018, Proceedings of the National Academy of Sciences.
[36] N. A. Perendeci,et al. What kind of effects do Fe2O3 and Al2O3 nanoparticles have on anaerobic digestion, inhibition or enhancement? , 2018, Chemosphere.
[37] Karolina Kucharska,et al. Hydrogen production from biomass using dark fermentation , 2018, Renewable and Sustainable Energy Reviews.
[38] Mingming Song,et al. Ferric oxide/carbon nanoparticles enhanced bio-hydrogen production from glucose , 2018 .
[39] B. Dkhil,et al. Synthesis, structural, morphological, optical and magnetic characterization of iron oxide (α-Fe 2 O 3 ) nanoparticles by precipitation method: Effect of varying the nature of precursor , 2018 .
[40] Sanjay K. S. Patel,et al. Nanoparticles in Biological Hydrogen Production: An Overview , 2018, Indian Journal of Microbiology.
[41] G. Nakhla,et al. A critical review on inhibition of dark biohydrogen fermentation , 2017 .
[42] D. Giannakoudakis,et al. Effective impregnation for the preparation of magnetic mesoporous carbon: application to dye adsorption , 2017 .
[43] Xiang Gao,et al. Boron-modified activated carbon supporting low-content Au-based catalysts for acetylene hydrochlorination , 2017 .
[44] S. Roy,et al. High rates of Cr(VI) photoreduction with magnetically recoverable nano-Fe3O4@Fe2O3/Al2O3 catalyst under visible light , 2017 .
[45] B. Dkhil,et al. Control of the shape and size of iron oxide (α-Fe2O3) nanoparticles synthesized through the chemical precipitation method , 2017 .
[46] Kuan-Yu Chen,et al. Explore the possible effect of TiO2 and magnetic hematite nanoparticle addition on biohydrogen production by Clostridium pasteurianum based on gene expression measurements , 2016 .
[47] Kefa Cen,et al. Enhanced dark hydrogen fermentation by addition of ferric oxide nanoparticles using Enterobacter aerogenes. , 2016, Bioresource technology.
[48] Hamid Zilouei,et al. The effects of Fe0 and Ni0 nanoparticles versus Fe2+ and Ni2+ ions on dark hydrogen fermentation , 2016 .
[49] Bipro Ranjan Dhar,et al. Hydrogen production from sugar beet juice using an integrated biohydrogen process of dark fermentation and microbial electrolysis cell. , 2015, Bioresource technology.
[50] R. Doong,et al. Mesoporous silica supported bimetallic Pd/Fe for enhanced dechlorination of tetrachloroethylene , 2015 .
[51] Lei Zhang,et al. Enhanced dark fermentative hydrogen production by zero-valent iron activated carbon micro-electrolysis , 2015 .
[52] Mahesh N. Varma,et al. Enhancement effect of hematite and nickel nanoparticles on biohydrogen production from dairy wastewater , 2015 .
[53] Xiaocheng Jiang,et al. Nanoparticle facilitated extracellular electron transfer in microbial fuel cells. , 2014, Nano letters.
[54] A. Stephen,et al. Fabrication of Ni–Fe2O3 magnetic nanorods and application to the detection of uric acid , 2014 .
[55] Sundaresan Mohanraj,et al. Green Synthesized Iron Oxide Nanoparticles Effect on Fermentative Hydrogen Production by Clostridium acetobutylicum , 2014, Applied Biochemistry and Biotechnology.
[56] T. Tan,et al. Dark fermentative bio-hydrogen production: Effects of substrate pre-treatment and addition of metal ions or L-cysteine , 2013 .
[57] S. Ohkoshi,et al. Hard Magnetic Ferrite: ε-Fe2O3 , 2013 .
[58] Philippe Thonart,et al. Improving effect of metal and oxide nanoparticles encapsulated in porous silica on fermentative biohydrogen production by Clostridium butyricum. , 2013, Bioresource technology.
[59] L. H. Alvarez,et al. Assessing the impact of alumina nanoparticles in an anaerobic consortium: methanogenic and humus reducing activity , 2011, Applied Microbiology and Biotechnology.
[60] Yuxiao Zhao,et al. Nano-TiO2 enhanced photofermentative hydrogen produced from the dark fermentation liquid of waste activated sludge. , 2011, Environmental science & technology.
[61] Haijun Yang,et al. Enhancement effect of hematite nanoparticles on fermentative hydrogen production. , 2011, Bioresource technology.
[62] P. Lin,et al. The effect of pH on the production of biohydrogen by clostridia: Thermodynamic and metabolic considerations , 2011 .
[63] Haijun Yang,et al. Effect of ferrous iron concentration on anaerobic bio-hydrogen production from soluble starch , 2006 .