Works matching DE "WATER gas shift reactions"
Results: 826
Tailoring the CO<sub>2</sub> Hydrogenation Performance of Fe‐Based Catalyst via Unique Confinement Effect of the Carbon Shell.
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- Chemistry - A European Journal, 2023, v. 29, n. 65, p. 1, doi. 10.1002/chem.202301918
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Theoretical Calculations on Metal Catalysts Toward Water‐Gas Shift Reaction: a Review.
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- Chemistry - A European Journal, 2023, v. 29, n. 24, p. 1, doi. 10.1002/chem.202203781
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Photocatalytic Hydrogen Evolution by a De Novo Designed Metalloprotein that Undergoes Ni‐Mediated Oligomerization Shift.
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- Chemistry - A European Journal, 2023, v. 29, n. 14, p. 1, doi. 10.1002/chem.202202902
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Architecting Freestanding Sulfur Cathodes for Superior Room‐Temperature Na–S Batteries.
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- Advanced Functional Materials, 2021, v. 31, n. 32, p. 1, doi. 10.1002/adfm.202102280
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Encapsulating Sulfides into Tridymite/Carbon Reactors Enables Stable Sodium Ion Conversion/Alloying Anode with High Initial Coulombic Efficiency Over 89%.
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- Advanced Functional Materials, 2021, v. 31, n. 15, p. 1, doi. 10.1002/adfm.202009598
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Flexible Electrocatalytic Nanofiber Membrane Reactor for Lithium/Sulfur Conversion Chemistry.
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- Advanced Functional Materials, 2020, v. 30, n. 28, p. 1, doi. 10.1002/adfm.201910533
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Dynamic Current–Voltage Analysis of Oxygen Vacancy Mobility in Praseodymium‐Doped Ceria over Wide Temperature Limits.
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- Advanced Functional Materials, 2020, v. 30, n. 11, p. 1, doi. 10.1002/adfm.201907402
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- Article
Efficient Ni<sub>2</sub>Co<sub>4</sub>P<sub>3</sub> Nanowires Catalysts Enhance Ultrahigh‐Loading Lithium–Sulfur Conversion in a Microreactor‐Like Battery.
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- Advanced Functional Materials, 2020, v. 30, n. 3, p. N.PAG, doi. 10.1002/adfm.201906661
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Suitability of Raman Spectroscopy for Assessing Anisotropic Strain in Thin Films of Doped Ceria.
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- Advanced Functional Materials, 2019, v. 29, n. 11, p. N.PAG, doi. 10.1002/adfm.201804433
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Preparative methods and recent technological applications of ceria -based nanostructured catalyst materials in chemical and other fields – a review.
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- Materials Research Innovations, 2021, v. 25, n. 5, p. 276, doi. 10.1080/14328917.2020.1793873
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Synergistic effect of Ni and B' Sites on Perovskite type La<sub>2</sub>NiBO<sub>6</sub> catalyst and its effect on catalytic performance for carbon dioxide methanation.
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- Journal of Molecular Science, 2024, v. 40, n. 1, p. 70, doi. 10.13563/j.cnki.jmolsci.2023.10.012
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Inactivation of the uptake hydrogenase in the purple non-sulfur photosynthetic bacterium Rubrivivax gelatinosus CBS enables a biological water–gas shift platform for H<sub>2</sub> production.
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- Journal of Industrial Microbiology & Biotechnology, 2019, v. 46, n. 7, p. 993, doi. 10.1007/s10295-019-02173-7
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Hydrogen Production Enhancement in Pine Sawdust Gasification by Numerical and Experimental Methods.
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- Journal of Soil Sciences & Agricultural Engineering, 2025, v. 16, n. 1, p. 9, doi. 10.21608/jssae.2025.344109.1264
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Graphical Abstract: Energy Technol. 12/2015.
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- Energy Technology, 2015, v. 3, n. 12, p. 1163, doi. 10.1002/ente.201581211
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- Article
How to Overcome the Water-Gas-Shift Equilibrium using a Conventional Nickel Reformer Catalyst.
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- Energy Technology, 2015, v. 3, n. 12, p. 1205, doi. 10.1002/ente.201500175
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Ion-Functionalized Silver(I) Carboxylates: Synthesis and Application in Ru-Catalyzed Olefin Metathesis Reaction.
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- Russian Journal of General Chemistry, 2020, v. 90, n. 11, p. 2163, doi. 10.1134/S1070363220110237
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Structure and Energy Profile of the Skeletal Nickel Surface According to the Small-Angle X-Ray Diffraction and Adsorption Calorimetry Data.
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- Russian Journal of General Chemistry, 2020, v. 90, n. 9, p. 1787, doi. 10.1134/S1070363220090327
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Crowded catalyst, better catalyst.
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- National Science Review, 2021, v. 8, n. 10, p. 1, doi. 10.1093/nsr/nwab141
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Mechanisms of CO2 reduction into CO and formic acid on Fe (100): a DFT study.
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- Materials for Renewable & Sustainable Energy, 2021, v. 10, n. 2, p. 1, doi. 10.1007/s40243-021-00194-w
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New Catalysts and Reactors for the Synthesis or Conversion of Methanol.
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- Catalysts (2073-4344), 2024, v. 14, n. 9, p. 640, doi. 10.3390/catal14090640
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Supported Inverse MnO x /Pt Catalysts Facilitate Reverse Water Gas Shift Reaction.
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- Catalysts (2073-4344), 2024, v. 14, n. 7, p. 456, doi. 10.3390/catal14070456
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Innovative Catalytic Materials for Environmental Remediation and Energy Applications.
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- Catalysts (2073-4344), 2024, v. 14, n. 2, p. 102, doi. 10.3390/catal14020102
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The Effect of Precursor Concentration on the Crystallite Size of CeO 2 to Enhance the Sulfur Resistance of Pt/CeO 2 for Water Gas Shift.
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- Catalysts (2073-4344), 2024, v. 14, n. 2, p. 99, doi. 10.3390/catal14020099
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Mechanistic and Compositional Aspects of Industrial Catalysts for Selective CO 2 Hydrogenation Processes.
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- Catalysts (2073-4344), 2024, v. 14, n. 2, p. 95, doi. 10.3390/catal14020095
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Structure Robustness of Highly Dispersed Pt/Al 2 O 3 Catalyst for Propane Dehydrogenation during Oxychlorination Regeneration Process.
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- Catalysts (2073-4344), 2024, v. 14, n. 1, p. 48, doi. 10.3390/catal14010048
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Stability of Ruthenium/Carbon Catalytic Materials during Operation in Carbon Monoxide Methanation Process.
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- Catalysts (2073-4344), 2023, v. 13, n. 12, p. 1518, doi. 10.3390/catal13121518
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Plasmonic-Assisted Water–Gas Shift Reaction of Gold Particles on TiO 2.
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- Catalysts (2073-4344), 2023, v. 13, n. 11, p. 1444, doi. 10.3390/catal13111444
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Catalytic Ability of K- and Co-Promoted Oxo-Re and Oxo-ReMo Nanosized Compositions for Water–Gas Shift Reaction.
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- Catalysts (2073-4344), 2023, v. 13, n. 11, p. 1443, doi. 10.3390/catal13111443
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Propane Dehydrogenation over Cobalt Aluminates: Evaluation of Potential Catalytic Active Sites.
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- Catalysts (2073-4344), 2023, v. 13, n. 11, p. 1419, doi. 10.3390/catal13111419
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Promoter Effect on Carbon Nanosphere-Encapsulated Fe-Co Catalysts for Converting CO 2 to Light Olefins.
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- Catalysts (2073-4344), 2023, v. 13, n. 11, p. 1416, doi. 10.3390/catal13111416
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Highly Selective Transformation of CO 2 + H 2 into Para-Xylene via a Bifunctional Catalyst Composed of Cr 2 O 3 and Twin-Structured ZSM-5 Zeolite.
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- Catalysts (2073-4344), 2023, v. 13, n. 7, p. 1080, doi. 10.3390/catal13071080
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Cu and Cu-Fe Bi-Metal Nanoparticles Encapsulated in Hollow S-1 Zeolite for Reverse Water Gas Shift Reaction.
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- Catalysts (2073-4344), 2023, v. 13, n. 7, p. 1037, doi. 10.3390/catal13071037
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Effect of Re Addition on the Water–Gas Shift Activity of Ni Catalyst Supported by Mixed Oxide Materials for H 2 Production.
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- Catalysts (2073-4344), 2023, v. 13, n. 6, p. 959, doi. 10.3390/catal13060959
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Modification of Copper-Ceria Catalyst via Reverse Microemulsion Method and Study of the Effects of Surfactant on WGS Catalyst Activity.
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- Catalysts (2073-4344), 2023, v. 13, n. 6, p. 951, doi. 10.3390/catal13060951
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Silver-Doped Zeolitic Imidazolate Framework (Ag@ZIF-8): An Efficient Electrocatalyst for CO 2 Conversion to Syngas.
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- Catalysts (2073-4344), 2023, v. 13, n. 5, p. 867, doi. 10.3390/catal13050867
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Feed Effects on Water–Gas Shift Activity of M/Co 3 O 4 -ZrO 2 (M = Pt, Pd, and Ru) and Potassium Role in Methane Suppression.
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- Catalysts (2073-4344), 2023, v. 13, n. 5, p. 838, doi. 10.3390/catal13050838
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Influence of Cu/Al Ratio on the Performance of Carbon-Supported Cu/ZnO/Al 2 O 3 Catalysts for CO 2 Hydrogenation to Methanol.
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- Catalysts (2073-4344), 2023, v. 13, n. 5, p. 800, doi. 10.3390/catal13050800
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Methane Production from Biomass by Thermochemical Conversion: A Review.
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- Catalysts (2073-4344), 2023, v. 13, n. 4, p. 771, doi. 10.3390/catal13040771
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Design of Cu/MoO x for CO 2 Reduction via Reverse Water Gas Shift Reaction.
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- Catalysts (2073-4344), 2023, v. 13, n. 4, p. 684, doi. 10.3390/catal13040684
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Ru- and Rh-Based Catalysts for CO 2 Methanation Assisted by Non-Thermal Plasma.
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- Catalysts (2073-4344), 2023, v. 13, n. 3, p. 488, doi. 10.3390/catal13030488
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Performance of Particulate and Structured Pt/TiO 2 -Based Catalysts for the WGS Reaction under Realistic High- and Low-Temperature Shift Conditions.
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- Catalysts (2073-4344), 2023, v. 13, n. 2, p. 372, doi. 10.3390/catal13020372
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Carbon Dioxide Conversion on Supported Metal Nanoparticles: A Brief Review.
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- Catalysts (2073-4344), 2023, v. 13, n. 2, p. 305, doi. 10.3390/catal13020305
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Recent Advances on Fine-Tuning Engineering Strategies of CeO 2 -Based Nanostructured Catalysts Exemplified by CO 2 Hydrogenation Processes.
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- Catalysts (2073-4344), 2023, v. 13, n. 2, p. 275, doi. 10.3390/catal13020275
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Methanol Steam Reforming over La 1-x Sr x CeO 3-δ Catalysts for Hydrogen Production: Optimization of Operating Parameters.
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- Catalysts (2073-4344), 2023, v. 13, n. 2, p. 248, doi. 10.3390/catal13020248
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Catalytic Activity of Ni Based Materials Prepared by Different Methods for Hydrogen Production via the Water Gas Shift Reaction.
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- Catalysts (2073-4344), 2023, v. 13, n. 1, p. 176, doi. 10.3390/catal13010176
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Methanation of CO 2 over High Surface Nickel/Aluminates Compounds Prepared by a Self-Generated Carbon Template.
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- Catalysts (2073-4344), 2023, v. 13, n. 1, p. 142, doi. 10.3390/catal13010142
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Cobalt-Copper Oxide Catalysts for VOC Abatement: Effect of Co:Cu Ratio on Performance in Ethanol Oxidation.
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- Catalysts (2073-4344), 2023, v. 13, n. 1, p. 107, doi. 10.3390/catal13010107
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Sulfur-Resistant CeO 2 -Supported Pt Catalyst for Waste-to-Hydrogen: Effect of Catalyst Synthesis Method.
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- Catalysts (2073-4344), 2022, v. 12, n. 12, p. 1670, doi. 10.3390/catal12121670
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Selective Hydrogenation of 2-Methyl-3-butyn-2-ol in Microcapillary Reactor on Supported Intermetallic PdZn Catalyst, Effect of Support Doping on Stability and Kinetic Parameters.
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- Catalysts (2073-4344), 2022, v. 12, n. 12, p. 1660, doi. 10.3390/catal12121660
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Enhanced CuAl 2 O 4 Catalytic Activity via Alkalinization Treatment toward High CO 2 Conversion during Reverse Water Gas Shift Reaction.
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- Catalysts (2073-4344), 2022, v. 12, n. 12, p. 1511, doi. 10.3390/catal12121511
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