Improving intrinsic oxygen reduction activity and stability: Atomic layer deposition preparation of platinum-titanium alloy catalysts
暂无分享,去创建一个
Ryan C. Davis | J. Mueller | F. Prinz | T. Jaramillo | V. Viswanathan | Joonsuk Park | Drew C. Higgins | D. Lee | H. Han | Thomas D. Schladt | Marat Orazov | P. Schindler | R. Sarangi | Samuel M. Dull | Shicheng Xu | Dilip Krishnamurthy | T. Graf | Yongmin Kim | A. Dadlani | Zhaoxuan Wang | O. Vinogradova | Marat Orazov
[1] Xuanxuan Bi,et al. Atomic/molecular layer deposition for energy storage and conversion. , 2021, Chemical Society reviews.
[2] David H. K. Jackson,et al. Enhanced catalytic performance and changed reaction chemistry for electrochemical glycerol oxidation by atomic-layer-deposited Pt-nanoparticle catalysts , 2020 .
[3] N. Zhao,et al. Comprehensive Investigation into Garnet Electrolytes Toward Application-Oriented Solid Lithium Batteries , 2020, Electrochemical Energy Reviews.
[4] Gibaek Lee,et al. Superior durability and stability of Pt electrocatalyst on N-doped graphene-TiO2 hybrid material for oxygen reduction reaction and polymer electrolyte membrane fuel cells , 2020 .
[5] Zhao Jiang,et al. Facet-dependent catalytic activities of Pd/rGO: Exploring dehydrogenation mechanism of dodecahydro-N-ethylcarbazole , 2020, Applied Catalysis B: Environmental.
[6] A. Weimer,et al. Improved durability and activity of Pt/C catalysts through atomic layer deposition of tungsten nitride and subsequent thermal treatment , 2019, Applied Catalysis B: Environmental.
[7] X. Sun,et al. Single-Atom Catalysts: From Design to Application , 2019, Electrochemical Energy Reviews.
[8] Pei Kang Shen,et al. Facile synthesis of bimetallic Pt-Pd symmetry-broken concave nanocubes and their enhanced activity toward oxygen reduction reaction , 2019, Applied Catalysis B: Environmental.
[9] Hyunjoo J. Lee,et al. Au-doped PtCo/C catalyst preventing Co leaching for proton exchange membrane fuel cells , 2019, Applied Catalysis B: Environmental.
[10] X. Sun,et al. Pt-Based electrocatalysts with high atom utilization efficiency: from nanostructures to single atoms , 2019, Energy & Environmental Science.
[11] Wenjun Yan,et al. Synergistic effects in atomic-layer-deposited PtCox/CNTs catalysts enhancing hydrolytic dehydrogenation of ammonia borane , 2018, Applied Catalysis B: Environmental.
[12] F. Prinz,et al. Extending the limits of Pt/C catalysts with passivation-gas-incorporated atomic layer deposition , 2018, Nature Catalysis.
[13] A. Weimer,et al. Atomic layer deposition of TiO2 for stabilization of Pt nanoparticle oxygen reduction reaction catalysts , 2018, Journal of Applied Electrochemistry.
[14] V. Viswanathan,et al. Quantifying Confidence in DFT Predicted Surface Pourbaix Diagrams and Associated Reaction Pathways for Chlorine Evolution , 2018, ACS Catalysis.
[15] I. Chorkendorff,et al. Scalable Synthesis of Carbon-Supported Platinum–Lanthanide and −Rare-Earth Alloys for Oxygen Reduction , 2018 .
[16] S. Liao,et al. Highly Selective TiN-Supported Highly Dispersed Pt Catalyst: Ultra Active toward Hydrogen Oxidation and Inactive toward Oxygen Reduction. , 2018, ACS applied materials & interfaces.
[17] T. Jaramillo,et al. Engineering Ru@Pt Core-Shell Catalysts for Enhanced Electrochemical Oxygen Reduction Mass Activity and Stability , 2018, Nanomaterials.
[18] Yong Qin,et al. The precise decoration of Pt nanoparticles with Fe oxide by atomic layer deposition for the selective hydrogenation of cinnamaldehyde , 2017 .
[19] V. Viswanathan,et al. Maximal Predictability Approach for Identifying the Right Descriptors for Electrocatalytic Reactions. , 2017, The journal of physical chemistry letters.
[20] S. Liao,et al. In situ construction of Ir@Pt/C nanoparticles in the cathode layer of membrane electrode assemblies with ultra-low Pt loading and high Pt exposure , 2017 .
[21] Shiming Zhang,et al. Metal and Metal Oxide Interactions and Their Catalytic Consequences for Oxygen Reduction Reaction. , 2017, Journal of the American Chemical Society.
[22] V. Viswanathan,et al. Quantifying confidence in density functional theory predictions of magnetic ground states , 2017, 1706.00416.
[23] Travis J Omasta,et al. Activity and Durability of Pt-Ni Nanocage Electocatalysts in Proton Exchange Membrane Fuel Cells , 2017 .
[24] T. Jaramillo,et al. Active and Stable Ir@Pt Core–Shell Catalysts for Electrochemical Oxygen Reduction , 2017 .
[25] Tejs Vegge,et al. Functional Independent Scaling Relation for ORR/OER Catalysts , 2016 .
[26] V. Viswanathan,et al. Quantification of uncertainty in first-principles predicted mechanical properties of solids: Application to solid ion conductors , 2016, 1606.00392.
[27] Hyunjoo J. Lee,et al. Platinum–titanium intermetallic nanoparticle catalysts for oxygen reduction reaction with enhanced activity and durability , 2016 .
[28] U. G. Vej-Hansen,et al. Tuning the activity of Pt alloy electrocatalysts by means of the lanthanide contraction , 2016, Science.
[29] Jens K Nørskov,et al. Surface Tension Effects on the Reactivity of Metal Nanoparticles. , 2015, The journal of physical chemistry letters.
[30] Thomas Bligaard,et al. Assessing the reliability of calculated catalytic ammonia synthesis rates , 2014, Science.
[31] B. Liu,et al. Adsorbate-induced structural changes in 1-3 nm platinum nanoparticles. , 2014, Journal of the American Chemical Society.
[32] Arnold J. Forman,et al. Climbing the Activity Volcano: Core–Shell Ru@Pt Electrocatalysts for Oxygen Reduction , 2014 .
[33] Z. Duan,et al. Density Functional Theory Study of an Oxygen Reduction Reaction on a Pt3Ti Alloy Electrocatalyst , 2013 .
[34] Ying Liu,et al. High stability, high activity Pt/ITO oxygen reduction electrocatalysts. , 2013, Journal of the American Chemical Society.
[35] Thomas Bligaard,et al. Density functionals for surface science: Exchange-correlation model development with Bayesian error estimation , 2012 .
[36] S. Bent,et al. Microstructure-Dependent Nucleation in Atomic Layer Deposition of Pt on TiO2 , 2012 .
[37] B. Yuan,et al. Formation and Thermal Stability of Platinum Oxides on Size-Selected Platinum Nanoparticles: Support Effects , 2010 .
[38] K. Swider-Lyons,et al. Experimental methods for quantifying the activity of platinum electrocatalysts for the oxygen reduction reaction. , 2010, Analytical chemistry.
[39] A S Bondarenko,et al. Alloys of platinum and early transition metals as oxygen reduction electrocatalysts. , 2009, Nature chemistry.
[40] 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 .
[41] M Newville,et al. ATHENA, ARTEMIS, HEPHAESTUS: data analysis for X-ray absorption spectroscopy using IFEFFIT. , 2005, Journal of synchrotron radiation.
[42] K. Jacobsen,et al. Real-space grid implementation of the projector augmented wave method , 2004, cond-mat/0411218.
[43] Blöchl,et al. Projector augmented-wave method. , 1994, Physical review. B, Condensed matter.
[44] P. Ross,et al. Platinum-titanium alloy formation from high-temperature reduction of a titania-impregnated platinum catalyst: implications for strong metal-support interaction , 1986 .
[45] Daniel C. Harris,et al. Quantitative Chemical Analysis , 1968, Nature.
[46] Jason W. Zack,et al. Oxygen Reduction Reaction Measurements on Platinum Electrocatalysts Utilizing Rotating Disk Electrode Technique I. Impact of Impurities, Measurement Protocols and Applied Corrections , 2015 .
[47] Jason W. Zack,et al. Oxygen Reduction Reaction Measurements on Platinum Electrocatalysts Utilizing Rotating Disk Electrode Technique II. Influence of Ink Formulation, Catalyst Layer Uniformity and Thickness , 2015 .
[48] Bongjin Simon Mun,et al. Trends in electrocatalysis on extended and nanoscale Pt-bimetallic alloy surfaces. , 2007, Nature materials.
[49] W. M. Haynes. CRC Handbook of Chemistry and Physics , 1990 .