MnO2/reduced graphene oxide nanohybrids as a cathode catalyst for the microbial reduction of CO2 to acetate and isobutyric acid
暂无分享,去创建一个
[1] B. Min,et al. Copper ferrite supported reduced graphene oxide as cathode materials to enhance microbial electrosynthesis of volatile fatty acids from CO2. , 2021, The Science of the total environment.
[2] E. Yu,et al. Parameters influencing the development of highly conductive and efficient biofilm during microbial electrosynthesis: the importance of applied potential and inorganic carbon source , 2020, NPJ biofilms and microbiomes.
[3] B. Min,et al. Magnetite/zeolite nanocomposite-modified cathode for enhancing methane generation in microbial electrochemical systems , 2020 .
[4] K. Niranjan,et al. Bio-derived water dispersible polyurethane/rGO@α-MnO2/rGO@δ-MnO2 nanocomposite as a heterogeneous catalyst and anticorrosive material , 2020 .
[5] P. Shalini,et al. Antimony-tin based intermetallics supported on reduced graphene oxide as anode and MnO2@rGO as cathode electrode for the study of microbial fuel cell performance , 2020 .
[6] Guangli Li,et al. MnO2 Nanowires-Decorated Reduced Graphene Oxide Modified Glassy Carbon Electrode for Sensitive Determination of Bisphenol A , 2020 .
[7] W. Miran,et al. A novel MXene-coated biocathode for enhanced microbial electrosynthesis performance , 2020 .
[8] S. Venkata Mohan,et al. Capacitive biocathodes driving electrotrophy towards enhanced CO2 reduction for microbial electrosynthesis of fatty acids. , 2019, Bioresource technology.
[9] B. Min,et al. Enhanced methane fermentation of municipal sewage sludge by microbial electrochemical systems integrated with anaerobic digestion , 2019, International journal of hydrogen energy.
[10] A. Nizami,et al. Development of novel MnO2 coated carbon felt cathode for microbial electroreduction of CO2 to biofuels. , 2019, Journal of environmental management.
[11] B. Min,et al. Highly Porous Fe x MnO y Microsphere as an Efficient Cathode Catalyst for Microbial Electrosynthesis of Volatile Fatty Acids from CO 2 , 2019 .
[12] B. Min,et al. Enhancing bio-alcohol production from volatile fatty acids by suppressing methanogenic activity in single chamber microbial electrosynthesis cells (SCMECs) , 2019, Bioresource Technology Reports.
[13] Y. Meng,et al. A review on mechanistic understanding of MnO2 in aqueous electrolyte for electrical energy storage systems , 2019, International Materials Reviews.
[14] Jinlong Wang,et al. Ultrathin MnO2 nanosheets for optimized hydrogen evolution via formaldehyde reforming in water at room temperature , 2019, Applied Catalysis B: Environmental.
[15] Michael B. Ross,et al. Designing materials for electrochemical carbon dioxide recycling , 2019, Nature Catalysis.
[16] S. Gunasekaran,et al. MnO2 Nanoflowers Deposited on Graphene Paper as Electrode Materials for Supercapacitors , 2019, ACS Applied Nano Materials.
[17] Jun Luo,et al. Efficient Electroreduction CO2 to CO over MnO2 Nanosheets. , 2019, Inorganic chemistry.
[18] Y. Ahn,et al. Effectiveness of phase- and morphology-controlled MnO2 nanomaterials derived from flower-like δ-MnO2 as alternative cathode catalyst in microbial fuel cells. , 2019, Dalton transactions.
[19] A. Spormann,et al. Robust and biocompatible catalysts for efficient hydrogen-driven microbial electrosynthesis , 2019, Communications Chemistry.
[20] Tian-shun Song,et al. Mo2C-induced hydrogen production enhances microbial electrosynthesis of acetate from CO2 reduction , 2019, Biotechnology for Biofuels.
[21] B. Min,et al. Microbial Electrosynthesis of Bioalcohols through Reduction of High Concentrations of Volatile Fatty Acids , 2019, Energy & Fuels.
[22] Dongchu Chen,et al. A promising sensing platform toward dopamine using MnO2 nanowires/electro-reduced graphene oxide composites , 2019, Electrochimica Acta.
[23] H. Begum,et al. δ-MnO2 nanoflowers on sulfonated graphene sheets for stable oxygen reduction and hydrogen evolution reaction , 2019, Electrochimica Acta.
[24] Tian-shun Song,et al. Fluidized granular activated carbon electrode for efficient microbial electrosynthesis of acetate from carbon dioxide. , 2018, Bioresource technology.
[25] K. Rabaey,et al. Porous nickel hollow fiber cathodes coated with CNTs for efficient microbial electrosynthesis of acetate from CO2 using Sporomusa ovata , 2018 .
[26] D. Pant,et al. Impact of dissolved carbon dioxide concentration on the process parameters during its conversion to acetate through microbial electrosynthesis , 2018 .
[27] D. Pant,et al. An overview of cathode materials for microbial electrosynthesis of chemicals from carbon dioxide , 2017 .
[28] C. Buisman,et al. Bioelectrochemical conversion of CO2 to chemicals: CO2 as a next generation feedstock for electricity-driven bioproduction in batch and continuous modes. , 2017, Faraday discussions.
[29] A. Straathof,et al. Potential of commodity chemicals to become bio‐based according to maximum yields and petrochemical prices , 2017 .
[30] K. Rabaey,et al. Continuous long-term electricity-driven bioproduction of carboxylates and isopropanol from CO2 with a mixed microbial community , 2017 .
[31] D. Lovley,et al. Three-dimensional hierarchical metal oxide–carbon electrode materials for highly efficient microbial electrosynthesis , 2017 .
[32] Niranjan Kumar,et al. Role of oxygen functional groups in reduced graphene oxide for lubrication , 2017, Scientific Reports.
[33] S. Parry,et al. The use of carbon dioxide in microbial electrosynthesis: Advancements, sustainability and economic feasibility , 2017 .
[34] D. W. Ayele,et al. Controlled synthesis, characterization and reduction of graphene oxide: A convenient method for large scale production , 2017 .
[35] Liqiong Wu,et al. MnO2 nanoflowers and polyaniline nanoribbons grown on hybrid graphene/Ni 3D scaffolds by in situ electrochemical techniques for high-performance asymmetric supercapacitors , 2017 .
[36] H. May,et al. The bioelectrosynthesis of acetate. , 2016, Current opinion in biotechnology.
[37] R. Gautam,et al. Nitrogen doped graphene supported α-MnO2 nanorods for efficient ORR in a microbial fuel cell , 2016 .
[38] Arnab Halder,et al. Enhanced microbial electrosynthesis with three-dimensional graphene functionalized cathodes fabricated via solvothermal synthesis , 2016 .
[39] V. Ortiz-Martínez,et al. Influence of the preparation method of MnO2-based cathodes on the performance of single-chamber MFCs using wastewater , 2016 .
[40] Azah Mohamed,et al. Recent advances and emerging challenges in microbial electrolysis cells (MECs) for microbial production of hydrogen and value-added chemicals , 2016 .
[41] C. Buisman,et al. Application of gas diffusion biocathode in microbial electrosynthesis from carbon dioxide , 2016, Environmental Science and Pollution Research.
[42] Jianjun Song,et al. Construction of Hierarchical α-MnO2 Nanowires@Ultrathin δ-MnO2 Nanosheets Core-Shell Nanostructure with Excellent Cycling Stability for High-Power Asymmetric Supercapacitor Electrodes. , 2016, ACS applied materials & interfaces.
[43] Lin Yu,et al. Controlled synthesis of α-MnO2 nanowires and their catalytic performance for toluene combustion , 2016 .
[44] S. Freguia,et al. Bringing High-Rate, CO2-Based Microbial Electrosynthesis Closer to Practical Implementation through Improved Electrode Design and Operating Conditions. , 2016, Environmental science & technology.
[45] Xing Xie,et al. Design and fabrication of bioelectrodes for microbial bioelectrochemical systems , 2015 .
[46] Deepak Pant,et al. Carbon dioxide reduction by mixed and pure cultures in microbial electrosynthesis using an assembly of graphite felt and stainless steel as a cathode. , 2015, Bioresource technology.
[47] Lin Yu,et al. High-performance α-MnO2 nanowire electrode for supercapacitors , 2015 .
[48] J Colprim,et al. Microbial electrosynthesis of butyrate from carbon dioxide. , 2015, Chemical communications.
[49] Junyong Sun,et al. Morphology–dependent electrochemical sensing properties of manganese dioxide–graphene oxide hybrid for guaiacol and vanillin , 2014 .
[50] Chun‐Sing Lee,et al. Assembly of MnO2 nanowires@reduced graphene oxide hybrid with an interconnected structure for a high performance lithium ion battery , 2014 .
[51] D. Pant,et al. Enzymatic electrosynthesis of formate through CO2 sequestration/reduction in a bioelectrochemical system (BES). , 2014, Bioresource technology.
[52] Peihong Deng,et al. Acetylene black paste electrode modified with graphene as the voltammetric sensor for selective determination of tryptophan in the presence of high concentrations of tyrosine. , 2014, Materials science & engineering. C, Materials for biological applications.
[53] A. Schmid,et al. Metabolic engineering of Pseudomonas sp. strain VLB120 as platform biocatalyst for the production of isobutyric acid and other secondary metabolites , 2014, Microbial Cell Factories.
[54] Bruce E Logan,et al. Enhanced start-up of anaerobic facultatively autotrophic biocathodes in bioelectrochemical systems. , 2013, Journal of biotechnology.
[55] Tian Zhang,et al. Improved cathode for high efficient microbial-catalyzed reduction in microbial electrosynthesis cells. , 2013, Physical chemistry chemical physics : PCCP.
[56] Deepak Pant,et al. Bioelectrocatalyzed reduction of acetic and butyric acids via direct electron transfer using a mixed culture of sulfate-reducers drives electrosynthesis of alcohols and acetone. , 2013, Chemical communications.
[57] Soumya Pandit,et al. Graphene supported α-MnO2 nanotubes as a cathode catalyst for improved power generation and wastewater treatment in single-chambered microbial fuel cells , 2013 .
[58] Juan Bisquert,et al. Identifying charge and mass transfer resistances of an oxygen reducing biocathode , 2011 .
[59] Derek R. Lovley,et al. Microbial Electrosynthesis: Feeding Microbes Electricity To Convert Carbon Dioxide and Water to Multicarbon Extracellular Organic Compounds , 2010, mBio.
[60] Yu Lei,et al. Manganese dioxide as a new cathode catalyst in microbial fuel cells , 2010 .
[61] Mikkel Jørgensen,et al. The teraton challenge. A review of fixation and transformation of carbon dioxide , 2010 .
[62] Li Zhuang,et al. Manganese dioxide as an alternative cathodic catalyst to platinum in microbial fuel cells. , 2009, Biosensors & bioelectronics.
[63] Xiaojing Yang,et al. Structural Characterization of Self-Assembled MnO2 Nanosheets from Birnessite Manganese Oxide Single Crystals , 2004 .
[64] I. Willner,et al. Probing Biomolecular Interactions at Conductive and Semiconductive Surfaces by Impedance Spectroscopy: Routes to Impedimetric Immunosensors, DNA‐Sensors, and Enzyme Biosensors , 2003 .
[65] B. Min,et al. Conductive magnetite nanoparticles trigger syntrophic methane production in single chamber microbial electrochemical systems. , 2019, Bioresource technology.
[66] M. Aghazadeh. CTAB-assisted Cathodic Electrosynthesis of MnO2 ultra-fine Nanoparticles and Investigation of Their Charge Storage Performance , 2018 .
[67] Yuhang Zheng,et al. Fabrication of Functionalized Graphene-Based MnO2 Nanoflower through Electrodeposition for High-Performance Supercapacitor Electrodes , 2016 .