Atomic layer-by-layer deposition of Pt on Pd nanocubes for catalysts with enhanced activity and durability toward oxygen reduction.
暂无分享,去创建一个
Lei Zhang | Younan Xia | Ning Lu | Manos Mavrikakis | Moon J. Kim | Zhaoxiong Xie | Sang-Il Choi | Younan Xia | M. Mavrikakis | Sang‐Il Choi | Jinho Park | Zhaoxiong Xie | J. Herron | N. Lu | Jinho Park | Moon J Kim | Jinguo G Wang | Shuifen Xie | Luke T Roling | Jeffrey A Herron | Jinguo Wang | Lei Zhang | Shuifen Xie | Luke T. Roling | L. T. Roling
[1] B. Steele,et al. Materials for fuel-cell technologies , 2001, Nature.
[2] M. Mavrikakis,et al. Platinum Monolayer Fuel Cell Electrocatalysts , 2007 .
[3] M. Verheijen,et al. Influence of Oxygen Exposure on the Nucleation of Platinum Atomic Layer Deposition: Consequences for Film Growth, Nanopatterning, and Nanoparticle Synthesis , 2013 .
[4] Younan Xia,et al. Catalysis on faceted noble-metal nanocrystals: both shape and size matter , 2013 .
[5] Mark K. Debe,et al. Electrocatalyst approaches and challenges for automotive fuel cells , 2012, Nature.
[6] Younan Xia,et al. Enhancing the catalytic and electrocatalytic properties of Pt-based catalysts by forming bimetallic nanocrystals with Pd. , 2012, Chemical Society reviews.
[7] Hong Yang,et al. Designer platinum nanoparticles: Control of shape, composition in alloy, nanostructure and electrocatalytic property , 2009 .
[8] G. Ertl,et al. Handbook of Heterogeneous Catalysis , 1997 .
[9] Zhong-Qun Tian,et al. Epitaxial growth of heterogeneous metal nanocrystals: from gold nano-octahedra to palladium and silver nanocubes. , 2008, Journal of the American Chemical Society.
[10] H. Gasteiger,et al. Activity benchmarks and requirements for Pt, Pt-alloy, and non-Pt oxygen reduction catalysts for PEMFCs , 2005 .
[11] Aicheng Chen,et al. Platinum-based nanostructured materials: synthesis, properties, and applications. , 2010, Chemical reviews.
[12] Lijun Wu,et al. Oxygen reduction on well-defined core-shell nanocatalysts: particle size, facet, and Pt shell thickness effects. , 2009, Journal of the American Chemical Society.
[13] Y. Kido,et al. Catalytic activity of Pt/TaB2(0001) for the oxygen reduction reaction. , 2013, Angewandte Chemie.
[14] J. Nørskov,et al. Ligand effects in heterogeneous catalysis and electrochemistry , 2007 .
[15] Shouheng Sun,et al. Tuning nanoparticle catalysis for the oxygen reduction reaction. , 2013, Angewandte Chemie.
[16] H. Jónsson,et al. Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode. , 2004, The journal of physical chemistry. B.
[17] J. G. Chen,et al. Role of strain and ligand effects in the modification of the electronic and chemical properties of bimetallic surfaces. , 2004, Physical review letters.
[18] M. Mavrikakis,et al. Alloy catalysts designed from first principles , 2004, Nature materials.
[19] Moon J. Kim,et al. On the role of surface diffusion in determining the shape or morphology of noble-metal nanocrystals , 2013, Proceedings of the National Academy of Sciences.
[20] Manos Mavrikakis,et al. Ru-Pt core-shell nanoparticles for preferential oxidation of carbon monoxide in hydrogen. , 2008, Nature materials.
[21] Younan Xia,et al. Pd-Pt Bimetallic Nanodendrites with High Activity for Oxygen Reduction , 2009, Science.
[22] Moon J. Kim,et al. Synthesis of Pd-Rh core-frame concave nanocubes and their conversion to Rh cubic nanoframes by selective etching of the Pd cores. , 2012, Angewandte Chemie.
[23] Bongjin Simon Mun,et al. Trends in electrocatalysis on extended and nanoscale Pt-bimetallic alloy surfaces. , 2007, Nature materials.
[24] Jens K. Nørskov,et al. Electrochemical dissolution of surface alloys in acids: Thermodynamic trends from first-principles calculations , 2007 .
[25] S. Brankovic,et al. Metal monolayer deposition by replacement of metal adlayers on electrode surfaces , 2001 .
[26] Philip N. Ross,et al. Improved Oxygen Reduction Activity on Pt3Ni(111) via Increased Surface Site Availability , 2007, Science.
[27] P. Ross,et al. Surface science studies of model fuel cell electrocatalysts , 2002 .
[28] Y. Orikasa,et al. Quantitating the lattice strain dependence of monolayer Pt shell activity toward oxygen reduction. , 2013, Journal of the American Chemical Society.
[29] M. Ritala,et al. Atomic Layer Deposition of Platinum Thin Films , 2003 .
[30] J. Nørskov,et al. Effect of Strain on the Reactivity of Metal Surfaces , 1998 .
[31] Michael F Toney,et al. Lattice-strain control of the activity in dealloyed core-shell fuel cell catalysts. , 2010, Nature chemistry.
[32] Moon J. Kim,et al. Synthesis and characterization of 9 nm Pt-Ni octahedra with a record high activity of 3.3 A/mg(Pt) for the oxygen reduction reaction. , 2013, Nano letters.
[33] M. Beyer,et al. Catalytic oxidation of CO with N2O on gas-phase platinum clusters. , 2004, Angewandte Chemie.
[34] Peidong Yang,et al. Sub-10 nm platinum nanocrystals with size and shape control: catalytic study for ethylene and pyrrole hydrogenation. , 2009, Journal of the American Chemical Society.
[35] Miaofang Chi,et al. Highly stable silver nanoplates for surface plasmon resonance biosensing. , 2012, Angewandte Chemie.
[36] Ferdi Schüth,et al. Handbook of Heterogeneous Catalysis. 2nd Edition , 2008 .
[37] Zhong Lin Wang,et al. Synthesis of Tetrahexahedral Platinum Nanocrystals with High-Index Facets and High Electro-Oxidation Activity , 2007, Science.