Works matching DE "ELECTROLYTIC cells"
Results: 1032
Ether‐Free Alkaline Polyelectrolytes for Water Electrolyzers: Recent Advances and Perspectives.
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- Angewandte Chemie, 2025, v. 137, n. 3, p. 1, doi. 10.1002/ange.202418324
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Honeycomb‐Structured IrO<sub>x</sub> Foam Platelets as the Building Block of Anode Catalyst Layer in PEM Water Electrolyzer.
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- Angewandte Chemie, 2025, v. 137, n. 3, p. 1, doi. 10.1002/ange.202415032
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Portable Solar-Integrated Open-Source Chemistry Lab for Water Treatment with Electrolysis.
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- Technologies (2227-7080), 2025, v. 13, n. 2, p. 57, doi. 10.3390/technologies13020057
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The Impact of Electrolytic Cell Parameters on the Boiling Rate of the Electrolyte During Electrolytic Plasma Processing.
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- Computation, 2025, v. 13, n. 2, p. 44, doi. 10.3390/computation13020044
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Rational durability design of heterogeneous functional materials: Some first principles.
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- Mechanics of Composite Materials, 2013, v. 49, n. 1, p. 21, doi. 10.1007/s11029-013-9317-7
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Enrichment Strategies for Efficient CO<sub>2</sub> Electroreduction in Acidic Electrolytes.
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- Chemistry - A European Journal, 2023, v. 29, n. 67, p. 1, doi. 10.1002/chem.202302382
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Electrocatalytic Reduction of CO<sub>2</sub> Coupled with Organic Conversion to Selectively Synthesize High‐Value Chemicals.
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- Chemistry - A European Journal, 2023, v. 29, n. 20, p. 1, doi. 10.1002/chem.202203228
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Frontispiece: Advances in Selective Electrocatalytic Hydrogenation of Alkynes to Alkenes.
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- Chemistry - A European Journal, 2023, v. 29, n. 15, p. 1, doi. 10.1002/chem.202381561
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Advances in Selective Electrocatalytic Hydrogenation of Alkynes to Alkenes.
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- Chemistry - A European Journal, 2023, v. 29, n. 15, p. 1, doi. 10.1002/chem.202202979
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Coupling Value‐Added Anodic Reactions with Electrocatalytic CO<sub>2</sub> Reduction.
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- Chemistry - A European Journal, 2023, v. 29, n. 11, p. 1, doi. 10.1002/chem.202203147
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Atmospheric‐Temperature Chain Reaction towards Ultrathin Non‐Crystal‐Phase Construction for Highly Efficient Water Splitting.
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- Chemistry - A European Journal, 2022, v. 28, n. 51, p. 1, doi. 10.1002/chem.202200683
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Amorphous MnRuO<sub>x</sub> Containing Microcrystalline for Enhanced Acidic Oxygen‐Evolution Activity and Stability.
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- Angewandte Chemie, 2024, v. 136, n. 33, p. 1, doi. 10.1002/ange.202405641
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Backbone Engineering of Polymeric Catalysts for High‐Performance CO<sub>2</sub> Reduction in Bipolar Membrane Zero‐Gap Electrolyzer.
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- Angewandte Chemie, 2024, v. 136, n. 15, p. 1, doi. 10.1002/ange.202400414
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Stabilizing *CO<sub>2</sub> Intermediates at the Acidic Interface using Molecularly Dispersed Cobalt Phthalocyanine as Catalysts for CO<sub>2</sub> Reduction.
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- Angewandte Chemie, 2024, v. 136, n. 8, p. 1, doi. 10.1002/ange.202317942
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Triptycene Branched Poly(aryl‐co‐aryl piperidinium) Electrolytes for Alkaline Anion Exchange Membrane Fuel Cells and Water Electrolyzers.
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- Angewandte Chemie, 2024, v. 136, n. 3, p. 1, doi. 10.1002/ange.202316697
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Directing the Selectivity of CO Electrolysis to Acetate by Constructing Metal‐Organic Interfaces.
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- Angewandte Chemie, 2023, v. 135, n. 45, p. 1, doi. 10.1002/ange.202309893
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Electrochemical Reversible Reforming between Ethylamine and Acetonitrile on Heterostructured Pd‐Ni(OH)<sub>2</sub> Nanosheets.
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- Angewandte Chemie, 2023, v. 135, n. 42, p. 1, doi. 10.1002/ange.202307924
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Cyclodextrin‐supported Co(OH)<sub>2</sub> Clusters as Electrocatalysts for Efficient and Selective H<sub>2</sub>O<sub>2</sub> Synthesis.
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- Angewandte Chemie, 2023, v. 135, n. 37, p. 1, doi. 10.1002/ange.202307355
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In Situ Probing and Identification of Electrochemical Reaction Intermediates by Floating Electrolytic Electrospray Mass Spectrometry.
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- Angewandte Chemie, 2023, v. 135, n. 12, p. 1, doi. 10.1002/ange.202219302
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A Novel Electrode for Value‐Generating Anode Reactions in Water Electrolyzers at Industrial Current Densities.
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- Angewandte Chemie, 2023, v. 135, n. 7, p. 1, doi. 10.1002/ange.202215804
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Enhanced Acidic Water Oxidation by Dynamic Migration of Oxygen Species at the Ir/Nb<sub>2</sub>O<sub>5−x</sub> Catalyst/Support Interfaces.
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- Angewandte Chemie, 2022, v. 134, n. 52, p. 1, doi. 10.1002/ange.202212341
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Progress in Hydrogen Production Coupled with Electrochemical Oxidation of Small Molecules.
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- Angewandte Chemie, 2022, v. 134, n. 51, p. 1, doi. 10.1002/ange.202213328
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Electronic Regulation of Nickel Single Atoms by Confined Nickel Nanoparticles for Energy‐Efficient CO<sub>2</sub> Electroreduction.
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- Angewandte Chemie, 2022, v. 134, n. 26, p. 1, doi. 10.1002/ange.202203335
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Inter‐relationships between Oxygen Evolution and Iridium Dissolution Mechanisms.
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- Angewandte Chemie, 2022, v. 134, n. 14, p. 1, doi. 10.1002/ange.202114437
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SmCo<sub>5</sub> with a Reconstructed Oxyhydroxide Surface for Spin‐Selective Water Oxidation at Elevated Temperature.
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- Angewandte Chemie, 2021, v. 133, n. 49, p. 26088, doi. 10.1002/ange.202109065
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Potential‐Induced Spin Changes in Fe/N/C Electrocatalysts Assessed by In Situ X‐ray Emission Spectroscopy.
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- Angewandte Chemie, 2021, v. 133, n. 21, p. 11813, doi. 10.1002/ange.202016951
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Regulating the Local Charge Distribution of Ni Active Sites for the Urea Oxidation Reaction.
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- Angewandte Chemie, 2021, v. 133, n. 19, p. 10671, doi. 10.1002/ange.202100610
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Optimization of Active Sites via Crystal Phase, Composition, and Morphology for Efficient Low‐Iridium Oxygen Evolution Catalysts.
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- Angewandte Chemie, 2020, v. 132, n. 44, p. 19822, doi. 10.1002/ange.202006756
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Advanced Bifunctional Oxygen Reduction and Evolution Electrocatalyst Derived from Surface‐Mounted Metal–Organic Frameworks.
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- Angewandte Chemie, 2020, v. 132, n. 14, p. 5886, doi. 10.1002/ange.201916507
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The Feasibility of Electrochemical Ammonia Synthesis in Molten LiCl–KCl Eutectics.
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- Angewandte Chemie, 2019, v. 131, n. 48, p. 17594, doi. 10.1002/ange.201909831
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Scaled‐Up Synthesis of Amorphous NiFeMo Oxides and Their Rapid Surface Reconstruction for Superior Oxygen Evolution Catalysis.
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- Angewandte Chemie, 2019, v. 131, n. 44, p. 15919, doi. 10.1002/ange.201909939
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Intercalated Iridium Diselenide Electrocatalysts for Efficient pH‐Universal Water Splitting.
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- Angewandte Chemie, 2019, v. 131, n. 41, p. 14906, doi. 10.1002/ange.201909369
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Channel‐Rich RuCu Nanosheets for pH‐Universal Overall Water Splitting Electrocatalysis.
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- Angewandte Chemie, 2019, v. 131, n. 39, p. 14121, doi. 10.1002/ange.201908092
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Iridium‐Based Cubic Nanocages with 1.1‐nm‐Thick Walls: A Highly Efficient and Durable Electrocatalyst for Water Oxidation in an Acidic Medium.
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- Angewandte Chemie, 2019, v. 131, n. 22, p. 7322, doi. 10.1002/ange.201901732
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An Integrated CO<sub>2</sub> Electrolyzer and Formate Fuel Cell Enabled by a Reversibly Restructuring Pb–Pd Bimetallic Catalyst.
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- Angewandte Chemie, 2019, v. 131, n. 12, p. 4071, doi. 10.1002/ange.201814257
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Preparation of Mesoporous Sb-, F-, and In-Doped SnO<sub>2</sub> Bulk Powder with High Surface Area for Use as Catalyst Supports in Electrolytic Cells.
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- Advanced Functional Materials, 2015, v. 25, n. 7, p. 1074, doi. 10.1002/adfm.201401919
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Blood Ties: Co<sub>3</sub>O<sub>4</sub> Decorated Blood Derived Carbon as a Superior Bifunctional Electrocatalyst.
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- Advanced Functional Materials, 2014, v. 24, n. 48, p. 7655, doi. 10.1002/adfm.201402770
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Diagnosing faults in aluminium processing by using multivariate statistical approaches.
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- Journal of Materials Science, 2012, v. 47, n. 3, p. 1268, doi. 10.1007/s10853-011-5884-y
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Proton conduction in BaCeYO + 0.04ZnO at intermediate temperatures and its application in ammonia synthesis at atmospheric pressure.
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- Journal of Materials Science, 2011, v. 46, n. 13, p. 4690, doi. 10.1007/s10853-011-5376-0
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Interfacial study of Crofer 22 APU interconnect-SABS-0 seal glass for solid oxide fuel/electrolyzer cells.
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- Journal of Materials Science, 2009, v. 44, n. 20, p. 5569, doi. 10.1007/s10853-009-3781-4
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Preparation, proton conduction, and application in ammonia synthesis at atmospheric pressure of La<sub>0.9</sub>Ba<sub>0.1</sub>Ga<sub>1– x </sub>Mg<sub> x </sub>O<sub>3–α</sub>.
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- Journal of Materials Science, 2008, v. 43, n. 15, p. 5109, doi. 10.1007/s10853-008-2747-2
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Microstructure and magnetic properties of electrodeposited cobalt films.
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- Journal of Materials Science, 2008, v. 43, n. 5, p. 1644, doi. 10.1007/s10853-007-2383-2
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Principles for designing conducting composites for fuel cells.
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- Fibre Chemistry, 2009, v. 41, n. 5, p. 321, doi. 10.1007/s10692-010-9197-8
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Optimum iron-pyrophosphate electronic coupling to improve electrochemical water splitting and charge storage.
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- Discover Nano, 2023, v. 18, n. 1, p. 1, doi. 10.1186/s11671-023-03937-y
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Influence of Operating Conditions on Hydrogen Gas Production Rate and Efficiency in Dry Cell Electrolyzer.
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- International Journal on Energy Conversion, 2022, v. 10, n. 5, p. 162, doi. 10.15866/irecon.v10i5.22626
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Effect of Components and Operating Conditions on the Performance of PEM Electrolyzers: A Review.
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- Electrochem, 2022, v. 3, n. 4, p. 581, doi. 10.3390/electrochem3040040
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Investigation of Electrical and Thermal Performance of a Commercial PEM Electrolyzer under Dynamic Solicitations.
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- Clean Technologies, 2022, v. 4, n. 4, p. 931, doi. 10.3390/cleantechnol4040057
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SYNTHESIS OF SODIUM HYPOCHLORITE SOLUTIONS IN COAXIAL FLOW CELLS IN CURRENT REVERSE MODE.
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- Issues of Chemistry & Chemical Technology / Voprosy Khimii & Khimicheskoi Tekhnologii, 2023, n. 6, p. 59, doi. 10.32434/0321-4095-2023-151-6-59-67
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Optimization of tribrid energy systems for cost-effective and high-efficiency electricity generation.
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- Ecological Engineering & Environmental Technology (EEET), 2025, v. 26, n. 1, p. 137, doi. 10.12912/27197050/195659
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基于 YOLOv8 算法的稀土熔盐电解槽 炉面温度监测研究.
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- Nonferrous Metals (Extractive Metallurgy), 2025, n. 1, p. 84, doi. 10.20237/j.issn.1007-7545.2025.01.012
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