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Chenjiao Ge, P. Jiang, W. Cui, Zonghua Pu, Zhicai Xing, Abdullah Asiri, A. Obaid, Xuping Sun, Jian Tian (2014)
Shape-controllable synthesis of Mo2C nanostructures as hydrogen evolution reaction electrocatalysts with high activityElectrochimica Acta, 134
James McKone, B. Sadtler, Caroline Werlang, N. Lewis, H. Gray (2013)
Ni–Mo Nanopowders for Efficient Electrochemical Hydrogen EvolutionACS Catalysis, 3
B. Conway, B. Tilak (2002)
Interfacial processes involving electrocatalytic evolution and oxidation of H2, and the role of chemisorbed HElectrochimica Acta, 47
Wei-Fu Chen, K. Sasaki, Chao Ma, A. Frenkel, N. Marinkovic, J. Muckerman, Yimei Zhu, R. Adzic (2012)
Hydrogen-evolution catalysts based on non-noble metal nickel-molybdenum nitride nanosheets.Angewandte Chemie, 51 25
Heron Vrubel, Xile Hu (2012)
Molybdenum boride and carbide catalyze hydrogen evolution in both acidic and basic solutions.Angewandte Chemie, 51 51
C. Giordano, Christian Erpen, Wei-Tang Yao, M. Antonietti (2008)
Synthesis of Mo and W carbide and nitride nanoparticles via a simple "urea glass" route.Nano letters, 8 12
J. Kibsgaard, T. Jaramillo, F. Besenbacher (2014)
Building an appropriate active-site motif into a hydrogen-evolution catalyst with thiomolybdate [Mo3S13]2- clusters.Nature chemistry, 6 3
C. Giordano, M. Antonietti (2011)
Synthesis of crystalline metal nitride and metal carbide nanostructures by sol-gel chemistryNano Today, 6
M. Kolel-Veetil, S. Qadri, and Osofsky, T. Keller (2005)
Formation of a Superconducting Mixture of β-Mo2C Nanoparticles and Carbon Nanotubes in an Amorphous Matrix of Molybdenum Compounds by the Pyrolysis of a Molybdenum Derivative of a CarboranylenesiloxaneChemistry of Materials, 17
B. Losiewicz (2004)
The structure, morphology and electrochemical impedance study of the hydrogen evolution reaction on the modified nickel electrodesInternational Journal of Hydrogen Energy, 29
C. Wan, Yagya Regmi, Brian Leonard (2014)
Multiple phases of molybdenum carbide as electrocatalysts for the hydrogen evolution reaction.Angewandte Chemie, 53 25
Wei-Fu Chen, S. Iyer, S. Iyer, K. Sasaki, Chiu-Hui Wang, Yimei Zhu, J. Muckerman, E. Fujita (2013)
Biomass-derived electrocatalytic composites for hydrogen evolutionEnergy and Environmental Science, 6
Jeong-Gil Choi, J. Brenner, C. Colling, B. Demczyk, Judy Dunning, L. Thompson (1992)
Synthesis and characterization of molybdenum nitride hydrodenitrogenation catalystsCatalysis Today, 15
Bingfei Cao, G. Veith, J. Neuefeind, R. Adzic, P. Khalifah (2013)
Mixed close-packed cobalt molybdenum nitrides as non-noble metal electrocatalysts for the hydrogen evolution reaction.Journal of the American Chemical Society, 135 51
S. Wirth, F. Harnisch, M. Weinmann, U. Schröder (2012)
Comparative study of IVB–VIB transition metal compound electrocatalysts for the hydrogen evolution reactionApplied Catalysis B-environmental, 126
N. Lewis, D. Nocera (2006)
Powering the planet: Chemical challenges in solar energy utilizationProceedings of the National Academy of Sciences, 103
Wei-Fu Chen, J. Muckerman, E. Fujita (2013)
Recent developments in transition metal carbides and nitrides as hydrogen evolution electrocatalysts.Chemical communications, 49 79
Duck Youn, S. Han, J. Kim, J. Kim, Hunmin Park, S. Choi, J. Lee (2014)
Highly active and stable hydrogen evolution electrocatalysts based on molybdenum compounds on carbon nanotube-graphene hybrid support.ACS nano, 8 5
Lei Liao, Sinong Wang, Jing-jing Xiao, Xiaojun Bian, Yahong Zhang, Micheál Scanlon, Xile Hu, Yi Tang, Baohong Liu, H. Girault (2014)
A nanoporous molybdenum carbide nanowire as an electrocatalyst for hydrogen evolution reactionEnergy and Environmental Science, 7
Jian Zhang, Xin Meng, Jianghong Zhao, Zhenping Zhu (2014)
Construction of a MoxC/Ni Network Electrode with Low Overpotential for Hydrogen GenerationChemCatChem, 6
Z. Li, C. Lu, Z. Xia, Yifan Zhou, Zhiqiang Luo (2007)
X-ray diffraction patterns of graphite and turbostratic carbonCarbon, 45
Yong Zhao, K. Kamiya, K. Hashimoto, Shuji Nakanishi (2013)
Hydrogen evolution by tungsten carbonitride nanoelectrocatalysts synthesized by the formation of a tungsten acid/polymer hybrid in situ.Angewandte Chemie, 52 51
C. Wolden, Anna Pickerell, T. Gawai, S. Parks, J. Hensley, J. Way (2011)
Synthesis of β-Mo(2)C thin films.ACS applied materials & interfaces, 3 2
Nawal Alhajri, D. Anjum, K. Takanabe (2014)
Molybdenum carbide–carbon nanocomposites synthesized from a reactive template for electrochemical hydrogen evolutionJournal of Materials Chemistry, 2
B. Conway, G. Jerkiewicz (2000)
Relation of energies and coverages of underpotential and overpotential deposited H at Pt and other metals to the ‘volcano curve’ for cathodic H2 evolution kineticsElectrochimica Acta, 45
James McKone, S. Marinescu, B. Brunschwig, J. Winkler, H. Gray (2014)
Earth-abundant hydrogen evolution electrocatalystsChemical Science, 5
Mark Weidman, D. Esposito, Yeh-Chun Hsu, Jingguang Chen (2012)
Comparison of electrochemical stability of transition metal carbides (WC, W2C, Mo2C) over a wide pH rangeJournal of Power Sources, 202
Wei-Fu Chen, Chiu-Hui Wang, K. Sasaki, N. Marinkovic, Wenqian Xu, J. Muckerman, Yimei Zhu, R. Adzic (2013)
Highly active and durable nanostructured molybdenum carbide electrocatalysts for hydrogen productionEnergy and Environmental Science, 6
E. Popczun, James McKone, Carlos Read, A. Biacchi, Alex Wiltrout, N. Lewis, R. Schaak (2013)
Nanostructured nickel phosphide as an electrocatalyst for the hydrogen evolution reaction.Journal of the American Chemical Society, 135 25
Yannick Kimmel, D. Esposito, R. Birkmire, Jingguang Chen (2012)
Effect of surface carbon on the hydrogen evolution reactivity of tungsten carbide (WC) and Pt-modified WC electrocatalystsInternational Journal of Hydrogen Energy, 37
N. Armaroli, V. Balzani (2011)
The hydrogen issue.ChemSusChem, 4 1
Junfeng Xie, Jiajia Zhang, Shuang Li, Fabian Grote, Xiaodong Zhang, Hao Zhang, Ruoxing Wang, Y. Lei, B. Pan, Yi Xie (2013)
Controllable disorder engineering in oxygen-incorporated MoS2 ultrathin nanosheets for efficient hydrogen evolution.Journal of the American Chemical Society, 135 47
S. Oyama (1992)
Preparation and catalytic properties of transition metal carbides and nitridesCatalysis Today, 15
Carlos Morales‐Guio, Lucas-Alexandre Stern, Xile Hu (2014)
Nanostructured hydrotreating catalysts for electrochemical hydrogen evolution.Chemical Society reviews, 43 18
C. Giordano, Christian Erpen, Wei-Tang Yao, Bettina Milke, M. Antonietti (2009)
Metal Nitride and Metal Carbide Nanoparticles by a Soft Urea PathwayChemistry of Materials, 21
D. Friebel, M. Bajdich, B. Yeo, M. Louie, Daniel Miller, H. Casalongue, Felix Mbuga, T. Weng, D. Nordlund, D. Sokaras, R. Alonso-Mori, A. Bell, A. Nilsson (2013)
On the chemical state of Co oxide electrocatalysts during alkaline water splitting.Physical chemistry chemical physics : PCCP, 15 40
S. Trasatti (1972)
Work function, electronegativity, and electrochemical behaviour of metals: III. Electrolytic hydrogen evolution in acid solutionsJournal of Electroanalytical Chemistry, 39
Molybdenum carbide and molybdenum nitride nanoparticles have been developed for catalyzing the hydrogen evolution reaction (HER). These nanocatalysts were synthesized by the ‘urea glass’ route. By simply changing the molar ratio of the urea/metal precursor, α-Mo2C and γ-Mo2N nanoparticles, both of which are crystalline, phase pure and monodisperse in size, were obtained. Hydrogen evolution was performed in both 1 M KOH and 0.5 M H2SO4 electrolytes, and characterized by linear sweep voltammetry and electrochemical impedance spectroscopy. The as-synthesized Mo2C showed excellent HER performance especially in KOH. At a catalyst loading of 102 μg cm−2, a low overpotential of 176 mV was needed to produce 10 mA cm−2 of H2. Its measured currents and turnover frequencies for hydrogen evolution at different overpotentials compare favorably against many other recently reported non-precious metal HER catalysts. Online gas chromatography demonstrated that the current efficiency for H2 production is ∼100%. Both Mo2C and Mo2N showed negligible overpotential losses after acceleration degradation tests in acid and alkali. This is noteworthy since very few catalysts are active in these two extreme pHs. An attractive aspect of the α-Mo2C and γ-Mo2N nanoparticles for electrochemical hydrogen evolution is that they are simple and well-characterized in chemical and physical composition. The excellent catalytic activity of the α-Mo2C catalysts can be attributed to their small particle size, which will facilitate a rapid electron transfer for the hydrogen evolution reaction. Our study has placed the as-synthesized α-Mo2C nanoparticles as highly promising alternatives to platinum in the alkaline water electrolyzer.
Journal of Materials Chemistry A – Royal Society of Chemistry
Published: Apr 7, 2015
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