High Electrocatalytic Response of a Mechanically Enhanced NbC Nanocomposite Electrode Toward Hydrogen Evolution Reaction.
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I. Iatsunskyi | E. Coy | J. Tejada | R. Ziolo | K. Siuzdak | Xi-xiang Zhang | S. Estradé | F. Peiró | L. Yate | W. Aperador | P. Torruella | D. Valencia | Eduardo Azanza
[1] Deborah J. Jones,et al. Novel niobium carbide/carbon porous nanotube electrocatalyst supports for proton exchange membrane fuel cell cathodes , 2017 .
[2] G. Guan,et al. Molybdenum carbide as alternative catalyst for hydrogen production – A review , 2017 .
[3] Tao Zhang,et al. 2D WC single crystal embedded in graphene for enhancing hydrogen evolution reaction , 2017 .
[4] Pooi See Lee,et al. Recent progress in layered transition metal carbides and/or nitrides (MXenes) and their composites: synthesis and applications , 2017 .
[5] Yury Gogotsi,et al. 2D metal carbides and nitrides (MXenes) for energy storage , 2017 .
[6] Aijun Du,et al. Ti3C2 MXene co-catalyst on metal sulfide photo-absorbers for enhanced visible-light photocatalytic hydrogen production , 2017, Nature Communications.
[7] S. Kundu,et al. Recent Trends and Perspectives in Electrochemical Water Splitting with an Emphasis on Sulfide, Selenide, and Phosphide Catalysts of Fe, Co, and Ni: A Review , 2016 .
[8] W. E. Lee,et al. DFT Predictions of Crystal Structure, Electronic Structure, Compressibility, and Elastic Properties of Hf–Al–C Carbides , 2016 .
[9] Z. Xia. Hydrogen evolution: Guiding principles , 2016, Nature Energy.
[10] E. Coy,et al. Structural and mechanical properties of NbN and Nb-Si-N films: Experiment and molecular dynamics simulations , 2016 .
[11] T. Murthy,et al. Synthesis and phase transformation mechanism of Nb2C carbide phases , 2016 .
[12] I. Sharp,et al. Scalable water splitting on particulate photocatalyst sheets with a solar-to-hydrogen energy conversion efficiency exceeding 1. , 2016, Nature materials.
[13] Bing Li,et al. 3D Hierarchical Porous Mo2 C for Efficient Hydrogen Evolution. , 2016, Small.
[14] Jingguang G. Chen,et al. Metal-modified niobium carbides as low-cost and impurity-resistant electrocatalysts for hydrogen evolution in acidic and alkaline electrolytes , 2016 .
[15] K. Harris,et al. Flexible electronics under strain: a review of mechanical characterization and durability enhancement strategies , 2016, Journal of Materials Science.
[16] J. Tu,et al. Transition Metal Carbides and Nitrides in Energy Storage and Conversion , 2016, Advanced science.
[17] R. Ma,et al. Ultrafine Molybdenum Carbide Nanoparticles Composited with Carbon as a Highly Active Hydrogen-Evolution Electrocatalyst. , 2015, Angewandte Chemie.
[18] Jian Zhang,et al. Molecular metal–Nx centres in porous carbon for electrocatalytic hydrogen evolution , 2015, Nature Communications.
[19] Kate J. Norris,et al. Electron Energy-Loss Spectroscopy (EELS) Study of NbOx Film for Resistive Memory Applications , 2015, Microscopy and Microanalysis.
[20] Xiaoxin Zou,et al. Noble metal-free hydrogen evolution catalysts for water splitting. , 2015, Chemical Society reviews.
[21] Yanguang Li,et al. Recent advances in heterogeneous electrocatalysts for the hydrogen evolution reaction , 2015 .
[22] Boon Siang Yeo,et al. Efficient hydrogen evolution reaction catalyzed by molybdenum carbide and molybdenum nitride nanocatalysts synthesized via the urea glass route , 2015 .
[23] S. Moya,et al. Nb-C nanocomposite films with enhanced biocompatibility and mechanical properties for hard-tissue implant applications. , 2015, ACS applied materials & interfaces.
[24] X. Lou,et al. Porous molybdenum carbide nano-octahedrons synthesized via confined carburization in metal-organic frameworks for efficient hydrogen production , 2015, Nature Communications.
[25] Yanguang Li,et al. Ultrathin MoS2(1–x)Se2x Alloy Nanoflakes For Electrocatalytic Hydrogen Evolution Reaction , 2015 .
[26] Ib Chorkendorff,et al. Recent Development in Hydrogen Evolution Reaction Catalysts and Their Practical Implementation. , 2015, The journal of physical chemistry letters.
[27] J. Jensen,et al. Transition metal carbides (WC, Mo2C, TaC, NbC) as potential electrocatalysts for the hydrogen evolution reaction (HER) at medium temperatures , 2015 .
[28] Oleksandr Viacheslavovych Bondar,et al. Microstructure, physical and chemical properties of nanostructured (Ti–Hf–Zr–V–Nb)N coatings under different deposition conditions , 2014 .
[29] D. Anjum,et al. Molybdenum carbide–carbon nanocomposites synthesized from a reactive template for electrochemical hydrogen evolution , 2014 .
[30] K. Załȩski,et al. Tailoring mechanical properties and electrical conductivity of flexible niobium carbide nanocomposite thin films , 2014, 1406.2498.
[31] Nathan S Lewis,et al. Highly active electrocatalysis of the hydrogen evolution reaction by cobalt phosphide nanoparticles. , 2014, Angewandte Chemie.
[32] N. Lewis,et al. Synthesis and hydrogen-evolution activity of tungsten selenide thin films deposited on tungsten foils , 2014 .
[33] Yury Gogotsi,et al. 25th Anniversary Article: MXenes: A New Family of Two‐Dimensional Materials , 2014, Advanced materials.
[34] Etsuko Fujita,et al. Recent developments in transition metal carbides and nitrides as hydrogen evolution electrocatalysts. , 2013, Chemical communications.
[35] Leone Spiccia,et al. Water oxidation catalysts based on abundant 1st row transition metals , 2013 .
[36] U. Jansson,et al. Sputter deposition of transition-metal carbide films - A critical review from a chemical perspective , 2013 .
[37] S. Tsang,et al. Dramatic Effects of Gallium Promotion on Methanol Steam Reforming Cu–ZnO Catalyst for Hydrogen Production: Formation of 5 Å Copper Clusters from Cu–ZnGaOx , 2013 .
[38] H. Vrubel,et al. Molybdenum boride and carbide catalyze hydrogen evolution in both acidic and basic solutions. , 2012, Angewandte Chemie.
[39] J. Musil,et al. Hard nanocomposite coatings: Thermal stability, oxidation resistance and toughness , 2012 .
[40] S. Barnes,et al. The concentration of platinum-group elements and gold in southern African and Karelian kimberlite-hosted mantle xenoliths: Implications for the noble metal content of the Earth's mantle , 2012 .
[41] A. Hurd,et al. Energy-critical elements for sustainable development , 2012 .
[42] N. Withers. Hydrogen-evolution catalysts: Molybdenum mimic , 2012 .
[43] Pablo Sanchis,et al. Hydrogen Production From Water Electrolysis: Current Status and Future Trends , 2012, Proceedings of the IEEE.
[44] U. Jansson,et al. Structural, mechanical and electrical-contact properties of nanocrystalline-NbC/amorphous-C coatings deposited by magnetron sputtering , 2011 .
[45] Xile Hu,et al. Recent developments of molybdenum and tungsten sulfides as hydrogen evolution catalysts , 2011 .
[46] Zhongwei Chen,et al. A review on non-precious metal electrocatalysts for PEM fuel cells , 2011 .
[47] Guosong Hong,et al. MoS2 nanoparticles grown on graphene: an advanced catalyst for the hydrogen evolution reaction. , 2011, Journal of the American Chemical Society.
[48] James R. McKone,et al. Solar water splitting cells. , 2010, Chemical reviews.
[49] J. Hargreaves,et al. Alternative catalytic materials: carbides, nitrides, phosphides and amorphous boron alloys. , 2010, Chemical Society reviews.
[50] A. Castleman,et al. Effect of hydrocarbons on the morphology of synthesized niobium carbide nanoparticles. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[51] A. Kiss,et al. Characterization of NbC coatings deposited by magnetron sputtering method , 2010 .
[52] R. Schneider,et al. EELS of Niobium and Stoichiometric Niobium-Oxide Phases—Part II: Quantification , 2009, Microscopy and Microanalysis.
[53] M. Antonietti,et al. Polymer semiconductors for artificial photosynthesis: hydrogen evolution by mesoporous graphitic carbon nitride with visible light. , 2009, Journal of the American Chemical Society.
[54] S. Vepřek,et al. Industrial applications of superhard nanocomposite coatings , 2008 .
[55] Thomas F. Jaramillo,et al. Identification of Active Edge Sites for Electrochemical H2 Evolution from MoS2 Nanocatalysts , 2007, Science.
[56] S. J. Lloyd,et al. Observations of nanoindents via cross-sectional transmission electron microscopy: a survey of deformation mechanisms , 2005, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[57] U. Şen. Wear properties of niobium carbide coatings performed by pack method on AISI 1040 steel , 2005 .
[58] J. Procházka,et al. Different approaches to superhard coatings and nanocomposites , 2005 .
[59] P. Hyldgaard,et al. Van der Waals density functional for layered structures. , 2003, Physical review letters.
[60] P. Martin,et al. The deposition of NbN and NbC thin films by filtered vacuum cathodic arc deposition , 2003 .
[61] P. Ross,et al. Surface science studies of model fuel cell electrocatalysts , 2002 .
[62] V. Tiainen. Amorphous carbon as a bio-mechanical coating — mechanical properties and biological applications , 2001 .
[63] A. Matthews,et al. On the significance of the H/E ratio in wear control: a nanocomposite coating approach to optimised tribological behaviour , 2000 .
[64] J. Musil. Hard and superhard nanocomposite coatings , 2000 .
[65] Martin Hÿtch,et al. Quantitative measurement of displacement and strain fields from HREM micrographs , 1998 .
[66] T. Mallouk,et al. Tungsten disulfide: a novel hydrogen evolution catalyst for water decomposition , 1988 .
[67] M. Boudart,et al. Platinum-Like Behavior of Tungsten Carbide in Surface Catalysis , 1973, Science.
[68] Dusan Strmcnik,et al. Energy and fuels from electrochemical interfaces. , 2016, Nature materials.
[69] Musil Jindrich. Hard Nanocomposite Coatings:Thermal Stability,Oxidation Resistance and Toughness , 2013 .
[70] Bongjin Simon Mun,et al. Trends in electrocatalysis on extended and nanoscale Pt-bimetallic alloy surfaces. , 2007, Nature materials.
[71] W. Schubert,et al. Tungsten in Catalysis , 1999 .
[72] J. Tobin,et al. 3. Transition Metal Carbides , 1972 .