Publications of Beatriz Roldan Cuenya
All genres
Journal Article (228)
Journal Article
B. Roldan Cuenya and : Piece by Piece-Electrochemical Synthesis of Individual Nanoparticles and their Performance in ORR Electrocatalysis. , , Angewandte Chemie International Edition 58 (24), 8221–8225 (2019).
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H. Jeon, , B. Roldan Cuenya, and : Selective 2-Propanol Oxidation over Unsupported Co3O4 Spinel Nanoparticles: Mechanistic Insights into Aerobic Oxidation of Alcohols. , , , , , , ACS Catalysis 9 (7), 5974–5985 (2019).
Journal Article
R. Rizo Parraga and B. Roldan Cuenya: Shape-Controlled Nanoparticles as Anodic Catalysts in Low Temperature Fuel Cells. ACS Energy Letters 4 (6), 1484–1495 (2019).
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F. Scholten, , and B. Roldan Cuenya: Plasma-Modified Dendritic Cu Catalyst for CO2 Electroreduction. ACS Catalysis 9 (6), 5496–5502 (2019).
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J. Timoshenko, and B. Roldan Cuenya: Tuning the Structure of Pt Nanoparticles through Support Interactions: An In Situ Polarized X-ray Absorption Study Coupled with Atomistic Simulations. , The Journal of Physical Chemistry C 123 (16), 10666–10676 (2019).
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B. Roldan Cuenya: Surface Segregation in CuNi Nanoparticle Catalysts During CO2 Hydrogenation: The Role of CO in the Reactant Mixture. , , , , , , , , , and The Journal of Physical Chemistry C 123 (13), 8421–8428 (2019).
Journal Article
F. Scholten, I. Sinev and B. Roldan Cuenya: Enhanced Stability and CO/Formate Selectivity of Plasma-Treated SnOx/AgOx Catalysts during CO2 Electroreduction. , Journal of the American Chemical Society 141 (13), 5261–5266 (2019).
Journal Article
B. Roldan Cuenya and : Partial Oxidation of Methane to Syngas Over Nickel-Based Catalysts: Influence of Support Type, Addition of Rhodium, and Preparation Method. , , , , , , Frontiers in Chemistry 7, 104 (2019).
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D. Gao, R. Aran Ais, H. Jeon and B. Roldan Cuenya: Rational catalyst and electrolyte design for CO2 electroreduction towards multicarbon products. Nature Catalysis 2 (3), 198–210 (2019).
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B. Roldan Cuenya and : Bio-inspired design: bulk iron–nickel sulfide allows for efficient solvent-dependent CO2 reduction. , , , , , , Chemical Science 10 (4), 1075–1081 (2019).
Journal Article
J. Velasco Vélez, T. Jones, D. Gao, E. Carbonio, , , , , , , , B. Roldan Cuenya, R. Schlögl, A. Knop-Gericke and : The Role of the Copper Oxidation State in the Electrocatalytic Reduction of CO2 into Valuable Hydrocarbons. ACS Sustainable Chemistry & Engineering 7 (1), 1485–1492 (2019).
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B. Roldan Cuenya, and : Role of Boron and Phosphorus in Enhanced Electrocatalytic Oxygen Evolution by Nickel Borides and Nickel Phosphides. , , , , , , , , , ChemElectroChem 6 (1), 235–240 (2019).
Journal Article
I. Sinev, , , , , , B. Roldan Cuenya and : Ir–Ni Bimetallic OER Catalysts Prepared by Controlled Ni Electrodeposition on Irpoly and Ir(111). , Surfaces 1 (1), 165–186 (2018).
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B. Roldan Cuenya, , and : Three-way catalysis with supported gold catalysts: Poisoning effects of hydrocarbons. , , , , , , Applied Catalysis B 237, 1021–1032 (2018).
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B. Roldan Cuenya and : Microtomography-based CFD modeling of a fixed-bed reactor with an open-cell foam monolith and experimental verification by reactor profile measurements. , , , Chemical Engineering Journal 353, 176–188 (2018).
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R. Aran Ais, D. Gao and B. Roldan Cuenya: Structure- and Electrolyte-Sensitivity in CO2 Electroreduction. Accounts of Chemical Research 51 (11), 2906–2917 (2018).
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B. Roldan Cuenya and : Highly active single-layer MoS2 catalyst synthesized by swift heavy ion irradiation. , , , , , , , , , , , , , , , Nanoscale 10 (48), 22908–22916 (2018).
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D. Gao, , , Y.-W. Choi, F. Scholten, , , and B. Roldan Cuenya: Activity and Selectivity Control in CO2 Electroreduction to Multicarbon Products over CuOx Catalysts via Electrolyte Design. ACS Catalysis 8 (11), 10012–10020 (2018).
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A. Bergmann, , and B. Roldan Cuenya: CO2 electroreduction on copper-cobalt nanoparticles: Size and composition effect. , , , , Nano Energy 53, 27–36 (2018).
Journal Article
B. Roldan Cuenya, and : Probing the chemical state of tin oxide NP catalysts during CO2 electroreduction: A complementary operando approach. , , , , , , Nano Energy 53, 828–840 (2018).