Reduced graphene oxide‐based materials for electrochemical energy conversion reactions
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[1] Z. Bian,et al. Highly Selective and Active Pd‐In/three‐dimensional Graphene with Special Structure for Electroreduction CO2 to Formate , 2018 .
[2] Haihui Wang,et al. Molybdenum Carbide Nanodots Enable Efficient Electrocatalytic Nitrogen Fixation under Ambient Conditions , 2018, Advanced materials.
[3] Q. Bui,et al. A novel electrocatalyst based on Fe2Ni1 nanoparticles anchored nitrogen doped graphene nanosheets towards efficient oxygen reduction reaction , 2019, Journal of Alloys and Compounds.
[4] P. J. Ollivier,et al. Layer-by-Layer Assembly of Ultrathin Composite Films from Micron-Sized Graphite Oxide Sheets and Polycations , 1999 .
[5] Ho Won Jang,et al. Electrocatalytic Water Splitting and CO 2 Reduction: Sustainable Solutions via Single‐Atom Catalysts Supported on 2D Materials , 2019, Small Methods.
[6] Fang Song,et al. Ni2P as a Janus catalyst for water splitting: the oxygen evolution activity of Ni2P nanoparticles , 2015 .
[7] Bettina Schrader. Greenhouse gas emission policies in the UK and Germany: influences and responses , 2002 .
[8] Yufan Zhang,et al. Dicobalt phosphide nanoparticles encased in boron and nitrogen co-doped graphitic layers as novel non-precious metal oxygen reduction electrocatalysts in alkaline media. , 2015, Chemical communications.
[9] Qiang Chen,et al. Atomic layer deposition of nickel carbide for supercapacitors and electrocatalytic hydrogen evolution , 2018 .
[10] A. Du,et al. Transition Metal Diborides: A New Type of High‐performance Electrocatalysts for Nitrogen Reduction , 2019, ChemCatChem.
[11] Ho Won Jang,et al. Tailoring catalytic activities of transition metal disulfides for water splitting , 2017 .
[12] R. Ruoff,et al. The chemistry of graphene oxide. , 2010, Chemical Society reviews.
[13] Ho Won Jang,et al. Drastically enhanced hydrogen evolution activity by 2D to 3D structural transition in anion-engineered molybdenum disulfide thin films for efficient Si-based water splitting photocathodes , 2017 .
[14] Jacob Bonde,et al. Biomimetic hydrogen evolution: MoS2 nanoparticles as catalyst for hydrogen evolution. , 2005, Journal of the American Chemical Society.
[15] Guosong Hong,et al. MoS2 nanoparticles grown on graphene: an advanced catalyst for the hydrogen evolution reaction. , 2011, Journal of the American Chemical Society.
[16] Hua Zhang,et al. Ni3S2 nanorods/Ni foam composite electrode with low overpotential for electrocatalytic oxygen evolution , 2013 .
[17] Venkata Surya Kumar Choutipalli,et al. Tris(2-benzimidazolylmethyl)amine-Directed Synthesis of Single-Atom Nickel Catalysts for Electrochemical CO Production from CO2. , 2018, Chemistry.
[18] Wensheng Yan,et al. Enhanced Electrocatalytic Reduction of CO2 via Chemical Coupling between Indium Oxide and Reduced Graphene Oxide. , 2019, Nano letters.
[19] Lin Peng,et al. Co3O4 nanoparticles anchored on nitrogen-doped reduced graphene oxide as a multifunctional catalyst for H2O2 reduction, oxygen reduction and evolution reaction , 2017, Scientific Reports.
[20] Jaewoong Lee,et al. Parallelized Reaction Pathway and Stronger Internal Band Bending by Partial Oxidation of Metal Sulfide–Graphene Composites: Important Factors of Synergistic Oxygen Evolution Reaction Enhancement , 2018 .
[21] J. Wilcox,et al. Carbon dioxide conversion into hydrocarbon fuels on defective graphene-supported Cu nanoparticles from first principles. , 2014, Nanoscale.
[22] X. Xia,et al. A Water‐Soluble Cu Complex as Molecular Catalyst for Electrocatalytic CO2 Reduction on Graphene‐Based Electrodes , 2018, Advanced Energy Materials.
[23] Baozhan Zheng,et al. Enabling Effective Electrocatalytic N2 Conversion to NH3 by the TiO2 Nanosheets Array under Ambient Conditions. , 2018, ACS applied materials & interfaces.
[24] James R. McKone,et al. Solar water splitting cells. , 2010, Chemical reviews.
[25] Prashant V Kamat,et al. Anchoring semiconductor and metal nanoparticles on a two-dimensional catalyst mat. Storing and shuttling electrons with reduced graphene oxide. , 2010, Nano letters.
[26] Jing-Li Luo,et al. Silver sulfide anchored on reduced graphene oxide as a high -performance catalyst for CO 2 electroreduction , 2018, Journal of Power Sources.
[27] M. Pumera,et al. Electrosynthesis of Bifunctional WS3-x /Reduced Graphene Oxide Hybrid for Hydrogen Evolution Reaction and Oxygen Reduction Reaction Electrocatalysis. , 2017, Chemistry.
[28] Shaojun Guo,et al. Towards high-efficiency nanoelectrocatalysts for oxygen reduction through engineering advanced carbon nanomaterials. , 2016, Chemical Society reviews.
[29] Hee-Young Park,et al. Work function-tailored graphene via transition metal encapsulation as a highly active and durable catalyst for the oxygen reduction reaction , 2019, Energy & Environmental Science.
[30] Andre K. Geim,et al. Electric Field Effect in Atomically Thin Carbon Films , 2004, Science.
[31] Hongyi Zhang,et al. Controlled assembly of Cu nanoparticles on pyridinic-N rich graphene for electrochemical reduction of CO2 to ethylene , 2016 .
[32] K. Novoselov,et al. A roadmap for graphene , 2012, Nature.
[33] V. Batista,et al. Electrochemical CO2 Reduction to Hydrocarbons on a Heterogeneous Molecular Cu Catalyst in Aqueous Solution. , 2016, Journal of the American Chemical Society.
[34] M. Boudart,et al. Platinum-Like Behavior of Tungsten Carbide in Surface Catalysis , 1973, Science.
[35] J. Nørskov,et al. Ammonia Synthesis from First-Principles Calculations , 2005, Science.
[36] Alexander L. Ivanovskii,et al. Graphene-based and graphene-like materials , 2012 .
[37] K. Trenberth,et al. Modern Global Climate Change , 2003, Science.
[38] B. Rezaei,et al. Reduction of carbon dioxide to methanol on the surface of adenine functionalized reduced graphene oxide at a low potential , 2018, International Journal of Hydrogen Energy.
[39] Ping Liu,et al. Catalysts for hydrogen evolution from the [NiFe] hydrogenase to the Ni2P(001) surface: the importance of ensemble effect. , 2005, Journal of the American Chemical Society.
[40] Xinxing Zhou,et al. CoMn2O4 doped reduced graphene oxide as an effective cathodic electrocatalyst for ORR in microbial fuel cells , 2019, Electrochimica Acta.
[41] D. Macfarlane,et al. Towards a better Sn: Efficient electrocatalytic reduction of CO2 to formate by Sn/SnS2 derived from SnS2 nanosheets , 2017 .
[42] H. Abruña,et al. Activating Pd by morphology tailoring for oxygen reduction. , 2009, Journal of the American Chemical Society.
[43] Tom Regier,et al. Covalent hybrid of spinel manganese-cobalt oxide and graphene as advanced oxygen reduction electrocatalysts. , 2012, Journal of the American Chemical Society.
[44] Mikkel Jørgensen,et al. The teraton challenge. A review of fixation and transformation of carbon dioxide , 2010 .
[45] Zhiyong Tang,et al. Facile synthesis of surfactant-free Au cluster/graphene hybrids for high-performance oxygen reduction reaction. , 2012, ACS nano.
[46] P. D. Tran,et al. Molecular Cobalt Complexes with Pendant Amines for Selective Electrocatalytic Reduction of Carbon Dioxide to Formic Acid. , 2017, Journal of the American Chemical Society.
[47] Karen Chan,et al. Molybdenum Sulfides and Selenides as Possible Electrocatalysts for CO2 Reduction , 2014 .
[48] R. Service. Chemistry. New recipe produces ammonia from air, water, and sunlight. , 2014, Science.
[49] N. Kim,et al. Mesoporous iron sulfide nanoparticles anchored graphene sheet as an efficient and durable catalyst for oxygen reduction reaction , 2019, Journal of Power Sources.
[50] Baotian Wang,et al. RGO induced one-dimensional bimetallic carbide nanorods: An efficient and pH-universal hydrogen evolution reaction electrocatalyst , 2019, Nano Energy.
[51] Z. Tang,et al. Ultrathin Nitrogen-Doped Holey Carbon@Graphene Bifunctional Electrocatalyst for Oxygen Reduction and Evolution Reactions in Alkaline and Acidic Media. , 2018, Angewandte Chemie.
[52] Shi-Zhang Qiao,et al. Rational design of electrocatalysts and photo(electro)catalysts for nitrogen reduction to ammonia (NH3) under ambient conditions , 2018 .
[53] S. Nguyen,et al. Graphene oxide, highly reduced graphene oxide, and graphene: versatile building blocks for carbon-based materials. , 2010, Small.
[54] Ho Won Jang,et al. Wafer-scale transferable molybdenum disulfide thin-film catalysts for photoelectrochemical hydrogen production , 2016 .
[55] Taizhong Huang,et al. Electrochemical impacts of sheet-like hafnium phosphide and hafnium disulfide catalysts bonded with reduced graphene oxide sheets for bifunctional oxygen reactions in alkaline electrolytes , 2019, RSC advances.
[56] Ho Won Jang,et al. Efficient Water Splitting Cascade Photoanodes with Ligand‐Engineered MnO Cocatalysts , 2018, Advanced science.
[57] M. Koper,et al. Nitrogen cycle electrocatalysis. , 2009, Chemical reviews.
[58] B. Geng,et al. A reliable aerosol-spray-assisted approach to produce and optimize amorphous metal oxide catalysts for electrochemical water splitting. , 2014, Angewandte Chemie.
[59] Xun Hu,et al. Nitrogen-Doped Carbon Nanotube–Graphene Frameworks with Encapsulated Fe/Fe3N Nanoparticles as Catalysts for Oxygen Reduction , 2019, ACS Applied Nano Materials.
[60] Tian Zhang,et al. Electrosynthesis of acetate from CO2 by a highly structured biofilm assembled with reduced graphene oxide–tetraethylene pentamine , 2016 .
[61] H. García,et al. Gold-copper nanoalloys supported on TiO2 as photocatalysts for CO2 reduction by water. , 2014, Journal of the American Chemical Society.
[62] H. Fei,et al. Single-Atomic Ruthenium Catalytic Sites on Nitrogen-Doped Graphene for Oxygen Reduction Reaction in Acidic Medium. , 2017, ACS nano.
[63] Abdullah M. Asiri,et al. Mn3O4 nanoparticles@reduced graphene oxide composite: An efficient electrocatalyst for artificial N2 fixation to NH3 at ambient conditions , 2019, Nano Research.
[64] N. Sergent,et al. Huge Instability of Pt/C Catalysts in Alkaline Medium , 2015 .
[65] P. Ajayan,et al. Atomic cobalt on nitrogen-doped graphene for hydrogen generation , 2015, Nature Communications.
[66] P. Shen,et al. Chestnut-like copper cobalt phosphide catalyst for all-pH hydrogen evolution reaction and alkaline water electrolysis , 2019, Journal of Materials Chemistry A.
[67] Thomas F. Jaramillo,et al. Identification of Active Edge Sites for Electrochemical H2 Evolution from MoS2 Nanocatalysts , 2007, Science.
[68] J. Zou,et al. A Heterostructure Coupling of Exfoliated Ni–Fe Hydroxide Nanosheet and Defective Graphene as a Bifunctional Electrocatalyst for Overall Water Splitting , 2017, Advanced materials.
[69] E. Leite,et al. Graphene oxide as a highly selective substrate to synthesize a layered MoS2 hybrid electrocatalyst. , 2012, Chemical communications.
[70] Z. Ren,et al. Cu nanowires shelled with NiFe layered double hydroxide nanosheets as bifunctional electrocatalysts for overall water splitting , 2017 .
[71] Bo Tang,et al. Electrochemical Ammonia Synthesis via Nitrogen Reduction Reaction on a MoS2 Catalyst: Theoretical and Experimental Studies , 2018, Advanced materials.
[72] Micheál D. Scanlon,et al. A nanoporous molybdenum carbide nanowire as an electrocatalyst for hydrogen evolution reaction , 2014 .
[73] Di Bao,et al. Anchoring PdCu Amorphous Nanocluster on Graphene for Electrochemical Reduction of N2 to NH3 under Ambient Conditions in Aqueous Solution , 2018 .
[74] Di Bao,et al. In Situ Coupling of Strung Co4N and Intertwined N-C Fibers toward Free-Standing Bifunctional Cathode for Robust, Efficient, and Flexible Zn-Air Batteries. , 2016, Journal of the American Chemical Society.
[75] Ho Won Jang,et al. Microscopic Evidence for Strong Interaction between Pd and Graphene Oxide that Results in Metal‐Decoration‐Induced Reduction of Graphene Oxide , 2017, Advanced materials.
[76] Anne C. Co,et al. A review of the aqueous electrochemical reduction of CO2 to hydrocarbons at copper , 2006 .
[77] A. Azapagic,et al. Carbon capture, storage and utilisation technologies: A critical analysis and comparison of their life cycle environmental impacts , 2015 .
[78] C. Mullins,et al. The Role of Anions in Metal Chalcogenide Oxygen Evolution Catalysis: Electrodeposited Thin Films of Nickel Sulfide as “Pre-catalysts” , 2016 .
[79] L. Qu,et al. Functional graphene nanomesh foam , 2014 .
[80] Weichao Wang,et al. Sponge Effect Boosting Oxygen Reduction Reaction at the Interfaces between Mullite SmMn2O5 and Nitrogen-Doped Reduced Graphene Oxide. , 2019, ACS applied materials & interfaces.
[81] J. Savéant,et al. A Local Proton Source Enhances CO2 Electroreduction to CO by a Molecular Fe Catalyst , 2012, Science.
[82] B. Steele,et al. Materials for fuel-cell technologies , 2001, Nature.
[83] Yao Sun,et al. Ultrafine Co-doped ZnO nanoparticles on reduced graphene oxide as an efficient electrocatalyst for oxygen reduction reaction , 2017 .
[84] S. Luo,et al. Fe2P/reduced graphene oxide/Fe2P sandwich-structured nanowall arrays: a high-performance non-noble-metal electrocatalyst for hydrogen evolution , 2017 .
[85] P. Yang,et al. Covalent organic frameworks comprising cobalt porphyrins for catalytic CO2 reduction in water , 2015, Science.
[86] Chong Liu,et al. Electrocatalytic Nitrogen Reduction at Low Temperature , 2018 .
[87] M. Chhowalla,et al. Copper nanoparticles stabilized by reduced graphene oxide for CO2 reduction reaction , 2015, Materials for Renewable and Sustainable Energy.
[88] P. Holland,et al. N2 Reduction and Hydrogenation to Ammonia by a Molecular Iron-Potassium Complex , 2011, Science.
[89] Ping Yang,et al. Hierarchical nickel-cobalt phosphide hollow spheres embedded in P-doped reduced graphene oxide towards superior electrochemistry activity , 2019, Carbon.
[90] L. Mai,et al. Metal-organic framework derived carbon-confined Ni2P nanocrystals supported on graphene for an efficient oxygen evolution reaction. , 2017, Chemical communications.
[91] G. Wallace,et al. A Porphyrin/Graphene Framework: A Highly Efficient and Robust Electrocatalyst for Carbon Dioxide Reduction , 2018, Advanced Energy Materials.
[92] Hongyu Chen,et al. Cr2O3 Nanoparticle-Reduced Graphene Oxide Hybrid: A Highly Active Electrocatalyst for N2 Reduction at Ambient Conditions. , 2019, Inorganic chemistry.
[93] J. Savéant,et al. Through-Space Charge Interaction Substituent Effects in Molecular Catalysis Leading to the Design of the Most Efficient Catalyst of CO2-to-CO Electrochemical Conversion. , 2016, Journal of the American Chemical Society.
[94] Y. Jiao,et al. Holey Reduced Graphene Oxide Coupled with an Mo2N–Mo2C Heterojunction for Efficient Hydrogen Evolution , 2018, Advanced materials.
[95] Ke Chu,et al. CuO/Graphene Nanocomposite for Nitrogen Reduction Reaction , 2019, ChemCatChem.
[96] S. Chemler,et al. Catalytic Aminohalogenation of Alkenes and Alkynes. , 2013, ACS catalysis.
[97] James D. Blakemore,et al. Molecular Catalysts for Water Oxidation. , 2015, Chemical reviews.
[98] Jun Jin,et al. MoS2 quantum dot decorated RGO: a designed electrocatalyst with high active site density for the hydrogen evolution reaction , 2015 .
[99] Xinwen Peng,et al. Prussian blue analogues-derived carbon composite with cobalt nanoparticles as an efficient bifunctional electrocatalyst for oxygen reduction and hydrogen evolution , 2019, Carbon.
[100] Robert Schlögl,et al. Ammonia as a possible element in an energy infrastructure: catalysts for ammonia decomposition , 2012 .
[101] Zhengtang Luo,et al. Polymer-Embedded Fabrication of Co2P Nanoparticles Encapsulated in N,P-Doped Graphene for Hydrogen Generation. , 2016, Nano letters.
[102] Charlie Tsai,et al. Activating and optimizing MoS2 basal planes for hydrogen evolution through the formation of strained sulphur vacancies. , 2016, Nature materials.
[103] Junliang Zhang,et al. Bimetallic and Ternary Alloys for Improved Oxygen Reduction Catalysis , 2007 .
[104] L. Spiccia,et al. Vertically Aligned Interlayer Expanded MoS2 Nanosheets on a Carbon Support for Hydrogen Evolution Electrocatalysis , 2017 .
[105] Hanqing Yu,et al. Ultrahigh electrocatalytic oxygen evolution by iron-nickel sulfide nanosheets/reduced graphene oxide nanohybrids with an optimized autoxidation process , 2018 .
[106] W. Goddard,et al. Atomic H-Induced Mo2C Hybrid as an Active and Stable Bifunctional Electrocatalyst. , 2017, ACS nano.
[107] Ruquan Ye,et al. Electronic Tuning of Cobalt Porphyrins Immobilized on Nitrogen-Doped Graphene for CO2 Reduction , 2019, ACS Applied Energy Materials.
[108] K. Thygesen,et al. Band structure engineered layered metals for low-loss plasmonics , 2017, Nature communications.
[109] Chang Ming Li,et al. Ultrasmall Ru2P nanoparticles on graphene: a highly efficient hydrogen evolution reaction electrocatalyst in both acidic and alkaline media. , 2018, Chemical communications.
[110] Dan Wu,et al. A MoS2 nanosheet–reduced graphene oxide hybrid: an efficient electrocatalyst for electrocatalytic N2 reduction to NH3 under ambient conditions , 2019, Journal of Materials Chemistry A.
[111] Kira Khaletskaya,et al. Fabrication of Gold/Titania Photocatalyst for CO2 Reduction Based on Pyrolytic Conversion of the Metal–Organic Framework NH2-MIL-125(Ti) Loaded with Gold Nanoparticles , 2015 .
[112] Wei Xing,et al. Surface Oxidized Cobalt-Phosphide Nanorods As an Advanced Oxygen Evolution Catalyst in Alkaline Solution , 2015 .
[113] Ye Tian,et al. Efficient electrocatalytic N2 reduction on CoO quantum dots , 2019, Journal of Materials Chemistry A.
[114] Abdullah M. Asiri,et al. TiO2 nanoparticles–reduced graphene oxide hybrid: an efficient and durable electrocatalyst toward artificial N2 fixation to NH3 under ambient conditions , 2018 .
[115] Tian Zhang,et al. Electrifying microbes for the production of chemicals , 2015, Front. Microbiol..
[116] Zhaolin Liu,et al. Heterogeneous Electrocatalyst with Molecular Cobalt Ions Serving as the Center of Active Sites. , 2017, Journal of the American Chemical Society.
[117] Aicheng Chen,et al. Simultaneous synthesis of gold nanoparticle/graphene nanocomposite for enhanced oxygen reduction reaction , 2015 .
[118] Meng Sun,et al. Graphene-based transition metal oxide nanocomposites for the oxygen reduction reaction. , 2015, Nanoscale.
[119] Hairong Xue,et al. One-pot synthesis of bi-metallic PdRu tripods as an efficient catalyst for electrocatalytic nitrogen reduction to ammonia , 2019, Journal of Materials Chemistry A.
[120] Angel Irabien,et al. Towards the electrochemical conversion of carbon dioxide into methanol , 2015 .
[121] D. Cole-Hamilton,et al. Homogeneous Catalysis--New Approaches to Catalyst Separation, Recovery, and Recycling , 2003, Science.
[122] Robert H. Hurt,et al. All in the graphene family - A recommended nomenclature for two-dimensional carbon materials , 2013 .
[123] Peng Chen,et al. Macroporous and monolithic anode based on polyaniline hybridized three-dimensional graphene for high-performance microbial fuel cells. , 2012, ACS nano.
[124] Changsheng Cao,et al. Cu nanoparticles decorating rGO nanohybrids as electrocatalyst toward CO2 reduction , 2017 .
[125] R. Ruoff,et al. Graphene and Graphene Oxide: Synthesis, Properties, and Applications , 2010, Advanced materials.
[126] M. Chan,et al. Edge-terminated molybdenum disulfide with a 9.4-Å interlayer spacing for electrochemical hydrogen production , 2015, Nature Communications.
[127] Xiulei Ji,et al. Nanocrystalline intermetallics on mesoporous carbon for direct formic acid fuel cell anodes. , 2010, Nature chemistry.
[128] Ho Won Jang,et al. Directly Assembled 3D Molybdenum Disulfide on Silicon Wafer for Efficient Photoelectrochemical Water Reduction , 2018 .
[129] Ho Won Jang,et al. Transition Metal Disulfide Nanosheets Synthesized by Facile Sonication Method for the Hydrogen Evolution Reaction , 2016 .
[130] Chong Xiao,et al. Low overpotential in vacancy-rich ultrathin CoSe2 nanosheets for water oxidation. , 2014, Journal of the American Chemical Society.
[131] Yao Ding,et al. Polymer-confined growth of perforated MoSe2 single-crystals on N-doped graphene toward enhanced hydrogen evolution. , 2017, Nanoscale.
[132] Hongyu Chen,et al. Electrocatalytic N2-to-NH3 conversion with high faradaic efficiency enabled using a Bi nanosheet array. , 2019, Chemical communications.
[133] Xiaoyun Li,et al. Nanocomposites Based on CoSe2-Decorated FeSe2 Nanoparticles Supported on Reduced Graphene Oxide as High-Performance Electrocatalysts toward Oxygen Evolution Reaction. , 2018, ACS applied materials & interfaces.
[134] X. Bao,et al. Size-dependent electrocatalytic reduction of CO2 over Pd nanoparticles. , 2015, Journal of the American Chemical Society.
[135] D. Akins,et al. Carbon-supported Pd-Co bimetallic nanoparticles as electrocatalysts for the oxygen reduction reaction , 2007 .
[136] Ping Wang,et al. Cobalt nickel boride as an active electrocatalyst for water splitting , 2017 .
[137] S. Liao,et al. Effect of Transition Metals on the Structure and Performance of the Doped Carbon Catalysts Derived From Polyaniline and Melamine for ORR Application , 2014 .
[138] Haiyang Li,et al. Photoprompted Hot Electrons from Bulk Cross-Linked Graphene Materials and Their Efficient Catalysis for Atmospheric Ammonia Synthesis. , 2016, ACS nano.
[139] A. Hakeem,et al. High efficiency graphene/Cu2O electrode for the electrochemical reduction of carbon dioxide to ethanol , 2017 .
[140] M. Saquib,et al. Reduced graphene oxide supported gold nanoparticles for electrocatalytic reduction of carbon dioxide , 2018, Journal of Nanoparticle Research.
[141] T. Meyer,et al. Selective electrocatalytic reduction of carbon dioxide to formate by a water-soluble iridium pincer catalyst , 2013 .
[142] G. Wallace,et al. Engineering Surface Amine Modifiers of Ultrasmall Gold Nanoparticles Supported on Reduced Graphene Oxide for Improved Electrochemical CO2 Reduction , 2018, Advanced Energy Materials.
[143] S. Dou,et al. Metal‐Free Carbon Materials for CO2 Electrochemical Reduction , 2017, Advanced materials.
[144] Junchen Liu,et al. Spindle Spinel CoFeCoO4 Microparticles/rGO as an Oxygen Reduction and Oxygen Evolution Catalyst , 2019, NANO.
[145] B. Pan,et al. Controllable disorder engineering in oxygen-incorporated MoS2 ultrathin nanosheets for efficient hydrogen evolution. , 2013, Journal of the American Chemical Society.
[146] W. S. Hummers,et al. Preparation of Graphitic Oxide , 1958 .
[147] M. N. Hossain,et al. Unique copper and reduced graphene oxide nanocomposite toward the efficient electrochemical reduction of carbon dioxide , 2017, Scientific Reports.
[148] Chunyong He,et al. Two-dimensional TaC nanosheets on a reduced graphene oxide hybrid as an efficient and stable electrocatalyst for water splitting. , 2016, Chemical communications.
[149] Junliang Zhang,et al. Catalytic Activity−d-Band Center Correlation for the O2 Reduction Reaction on Platinum in Alkaline Solutions , 2007 .
[150] Abdullah M. Asiri,et al. Boosted Electrocatalytic N2 Reduction to NH3 by Defect‐Rich MoS2 Nanoflower , 2018, Advanced Energy Materials.
[151] R. Ruoff,et al. Chemical methods for the production of graphenes. , 2009, Nature nanotechnology.
[152] Lichun Yang,et al. Structural Design and Electronic Modulation of Transition‐Metal‐Carbide Electrocatalysts toward Efficient Hydrogen Evolution , 2018, Advanced materials.
[153] Ho Won Jang,et al. Tailored NiOx/Ni Cocatalysts on Silicon for Highly Efficient Water Splitting Photoanodes via Pulsed Electrodeposition , 2018, ACS Catalysis.
[154] M. Koper,et al. Challenges in reduction of dinitrogen by proton and electron transfer. , 2014, Chemical Society reviews.
[155] P. Shen,et al. Nanocrystaline tungsten carbide supported Au–Pd electrocatalyst for oxygen reduction , 2007 .
[156] Zhongliang Liu,et al. A new method for fabrication of graphene/polyaniline nanocomplex modified microbial fuel cell anodes , 2013 .
[157] M. Nath,et al. Facile Synthesis of Ni₃B/RGO Nanocomposite as an Efficient Electrocatalyst for the Oxygen Evolution Reaction in Alkaline Media , 2018 .
[158] J. Ager,et al. Tailoring Copper Nanocrystals towards C2 Products in Electrochemical CO2 Reduction. , 2016, Angewandte Chemie.
[159] Xiaobin Fan,et al. Polyaniline Derived N-Doped Carbon-Coated Cobalt Phosphide Nanoparticles Deposited on N-Doped Graphene as an Efficient Electrocatalyst for Hydrogen Evolution Reaction. , 2018, Small.
[160] H. Yang,et al. Molybdenum carbide stabilized on graphene with high electrocatalytic activity for hydrogen evolution reaction. , 2014, Chemical communications.