Small palladium islands embedded in palladium–tungsten bimetallic nanoparticles form catalytic hotspots for oxygen reduction
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Andrey Shchukarev | Thomas Wågberg | Guangzhi Hu | Jingyuan Ma | Eduardo Gracia-Espino | G. Hu | Tiva Sharifi | T. Wågberg | Jingyuan Ma | A. Shchukarev | H. Barzegar | Xue'en Jia | Tiva Sharifi | Florian Nitze | Hamid Reza Barzegar | Xueen Jia | Lu Lu | Chuansheng Ma | Guang Yang | Eduardo Gracia‐Espino | Chuansheng Ma | Guang Yang | Florian Nitze | Lu Lu | F. Nitze
[1] Juhyoun Kwak,et al. Ordered nanoporous arrays of carbon supporting high dispersions of platinum nanoparticles , 2001, Nature.
[2] Shouheng Sun,et al. Synthesis of monodisperse Pt nanocubes and their enhanced catalysis for oxygen reduction. , 2007, Journal of the American Chemical Society.
[3] M. Chi,et al. Core/shell Pd/FePt nanoparticles as an active and durable catalyst for the oxygen reduction reaction. , 2010, Journal of the American Chemical Society.
[4] D. Seung,et al. Ordered mesoporous carbons with controlled particle sizes as catalyst supports for direct methanol fuel cell cathodes , 2008 .
[5] A. Majumdar,et al. Opportunities and challenges for a sustainable energy future , 2012, Nature.
[6] G. Hu,et al. Understanding the interface of six-shell cuboctahedral and icosahedral palladium clusters on reduced graphene oxide: experimental and theoretical study. , 2014, Journal of the American Chemical Society.
[7] Y. Rhee,et al. Crossover of formic acid through Nafion® membranes , 2003 .
[8] Y. Shao-horn,et al. Pt-Covered Multiwall Carbon Nanotubes for Oxygen Reduction in Fuel Cell Applications. , 2011, The journal of physical chemistry letters.
[9] D. Muller,et al. Structurally ordered intermetallic platinum-cobalt core-shell nanoparticles with enhanced activity and stability as oxygen reduction electrocatalysts. , 2013, Nature materials.
[10] Minhua Shao,et al. Electrocatalysis on platinum nanoparticles: particle size effect on oxygen reduction reaction activity. , 2011, Nano letters.
[11] Philip N. Ross,et al. Improved Oxygen Reduction Activity on Pt3Ni(111) via Increased Surface Site Availability , 2007, Science.
[12] Franco Cacialli,et al. Work Functions and Surface Functional Groups of Multiwall Carbon Nanotubes , 1999 .
[13] G. Hu,et al. Formation of active sites for oxygen reduction reactions by transformation of nitrogen functionalities in nitrogen-doped carbon nanotubes. , 2012, ACS nano.
[14] Chun-Lin Jia,et al. Atomic-Resolution Imaging of Oxygen in Perovskite Ceramics. , 2003 .
[15] L. A. Boatner,et al. Chemically sensitive structure-imaging with a scanning transmission electron microscope , 1988, Nature.
[16] T. Jacob,et al. Theoretical studies of potential-dependent and competing mechanisms of the electrocatalytic oxygen reduction reaction on Pt(111). , 2010, Angewandte Chemie.
[17] D. Sánchez-Portal,et al. Numerical atomic orbitals for linear-scaling calculations , 2001, cond-mat/0104170.
[18] Burke,et al. Generalized Gradient Approximation Made Simple. , 1996, Physical review letters.
[19] Anatoly I. Frenkel,et al. Solving the 3D structure of metal nanoparticles , 2007 .
[20] Tait D. McLouth,et al. Stabilization of high-performance oxygen reduction reaction Pt electrocatalyst supported on reduced graphene oxide/carbon black composite. , 2012, Journal of the American Chemical Society.
[21] Juan Herranz,et al. Iron-based cathode catalyst with enhanced power density in polymer electrolyte membrane fuel cells. , 2011, Nature communications.
[22] Thomas Wågberg,et al. Self-assembled palladium nanocrystals on helical carbon nanofibers as enhanced electrocatalysts for electro-oxidation of small molecules , 2012 .
[23] C. Tai,et al. Palladium nanocrystals supported on helical carbon nanofibers for highly efficient electro-oxidation of formic acid, methanol and ethanol in alkaline electrolytes , 2012 .
[24] A. Frenkel,et al. Characterization of palladium nanoparticles by using X-ray reflectivity, EXAFS, and electron microscopy. , 2006, Langmuir : the ACS journal of surfaces and colloids.
[25] F. Du,et al. Nitrogen-Doped Carbon Nanotube Arrays with High Electrocatalytic Activity for Oxygen Reduction , 2009, Science.
[26] H. Jónsson,et al. Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode. , 2004, The journal of physical chemistry. B.
[27] W. Kohn,et al. Self-Consistent Equations Including Exchange and Correlation Effects , 1965 .
[28] H. Meng,et al. XPS studies on surface reduction of tungsten oxide nanowire film by Ar+ bombardment , 2012 .
[29] R. Banerjee,et al. Porous-organic-framework-templated nitrogen-rich porous carbon as a more proficient electrocatalyst than Pt/C for the electrochemical reduction of oxygen. , 2013, Chemistry.
[30] D. Muller,et al. Pt-decorated PdCo@Pd/C core-shell nanoparticles with enhanced stability and electrocatalytic activity for the oxygen reduction reaction. , 2010, Journal of the American Chemical Society.
[31] P. Strasser,et al. Dealloyed Pt−Cu Core−Shell Nanoparticle Electrocatalysts for Use in PEM Fuel Cell Cathodes , 2008 .
[32] Irene J. Hsu,et al. Atomic layer deposition synthesis of platinum-tungsten carbide core-shell catalysts for the hydrogen evolution reaction. , 2012, Chemical communications.
[33] Hong Yang,et al. Designer platinum nanoparticles: Control of shape, composition in alloy, nanostructure and electrocatalytic property , 2009 .
[34] H. Murayama,et al. EXAFS study on interfacial structure between Pd cluster and n-octadecanethiolate monolayer: formation of mixed Pd–S interlayer , 2003 .
[35] H. Gasteiger,et al. Activity benchmarks and requirements for Pt, Pt-alloy, and non-Pt oxygen reduction catalysts for PEMFCs , 2005 .
[36] B. Steele,et al. Materials for fuel-cell technologies , 2001, Nature.
[37] D. Sánchez-Portal,et al. The SIESTA method for ab initio order-N materials simulation , 2001, cond-mat/0111138.
[38] Xiulei Ji,et al. Nanocrystalline intermetallics on mesoporous carbon for direct formic acid fuel cell anodes. , 2010, Nature chemistry.
[39] Gang Wu,et al. High-Performance Electrocatalysts for Oxygen Reduction Derived from Polyaniline, Iron, and Cobalt , 2011, Science.
[40] S. Nosé. A unified formulation of the constant temperature molecular dynamics methods , 1984 .
[41] Jens K. Nørskov,et al. Electrochemical dissolution of surface alloys in acids: Thermodynamic trends from first-principles calculations , 2007 .
[42] M Newville,et al. IFEFFIT: interactive XAFS analysis and FEFF fitting. , 2001, Journal of synchrotron radiation.
[43] Martin Ryle. Economics of alternative energy sources , 1977, Nature.
[44] J. Bokhoven,et al. EXAFS study of size dependence of atomic structure in palladium nanoparticles , 2014 .
[45] J Rossmeisl,et al. Estimations of electric field effects on the oxygen reduction reaction based on the density functional theory. , 2007, Physical chemistry chemical physics : PCCP.
[46] Ermete Antolini,et al. The stability of Pt–M (M = first row transition metal) alloy catalysts and its effect on the activity in low temperature fuel cells: A literature review and tests on a Pt–Co catalyst , 2006 .
[47] E. Stach,et al. Design of Pt-Pd binary superlattices exploiting shape effects and synergistic effects for oxygen reduction reactions. , 2013, Journal of the American Chemical Society.
[48] Wenjun Zhang,et al. A Free‐Standing Pt‐Nanowire Membrane as a Highly Stable Electrocatalyst for the Oxygen Reduction Reaction , 2011, Advanced materials.