Structural Design of Transition Metal Compounds based Electrocatalysts for Water Splitting

안인경 2020년
논문상세정보
' Structural Design of Transition Metal Compounds based Electrocatalysts for Water Splitting' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • 기술과 연합작용
  • cobalt sulfide
  • metalorganicframeworks
  • nickel iron layered double hydroxides
  • phase control
  • thermodynamic calculation
  • transition-metal compounds
  • water splitting
  • 금속유기골격체
  • 니켈-철 층상이중수산화물
  • 물 분해
  • 상 제어
  • 수전해
  • 열역학 계산
  • 전이금속 화합물
  • 코발트 이황화물
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
697 0

0.0%

' Structural Design of Transition Metal Compounds based Electrocatalysts for Water Splitting' 의 참고문헌

  • thermal ” ) battery technology
    178 ( 1 ) : p. 456-466 . [2008]
  • organic framework-derived bifunctional oxygen electrocatalyst
    1 ( 1 ) . [2016]
  • organic framework derived hollow CoS2 nanotube arrays : an efficient bifunctional electrocatalyst for overall water splitting .
    2 ( 6 ) : p. 342-348 . [2017]
  • nitrides , and phosphides oxygen evolution catalysts or bifunctional catalysts ?
    2 ( 8 ) : p. 1937-1938 . [2017]
  • al. , Sulfur encapsulation by MOF-derived CoS2 embedded in carbon hosts for high-performance Li ? S batteries
    7 ( 37 ) : p. 21128-21139 . [2019]
  • al. , Laser induced MoS2/carbon hybrids for hydrogen evolution reaction catalysts
    4 ( 18 ) : p. 6824-6830 . [2016]
  • al. , Hierarchical porous CoS 2 microboxes for efficient oxygen evolution reaction
    278 : p. 219-225 . [2018]
  • al. , Electrolysis of water on oxide surfaces
    607 ( 1-2 ) : p. 83-89 . [2007]
  • al. , Cobalt and nitrogen codoped ultrathin porous carbon nanosheets as bifunctional electrocatalysts for oxygen reduction and evolution
    141 : p. 704-711 . [2019]
  • [85] Rossmeisl, J., A. Logadottir, and J.K. Nørskov, Electrolysis of water on (oxidized) metal surfaces. Chemical Physics, 2005. 319(1-3): p. 178-184.
  • [169] G.K.Scweitzer and L.L. Pesterfield, The Aqueous Chemistry of the Elements, Oxford University Press, 2010.
  • [168] Dumesic, J. et al., Handbook of heterogeneous catalysis; Wiley: Wienheim, 2008, p1445.
  • [167] A.J. Bard and L.R.Faulkner, Electrochemical methods: fundamentals and applications, Wiley, 1980.
  • [162] Qiu, W., et al., A self-standing and flexible electrode of yolk-shell CoS2 spheres encapsulated with nitrogen-doped graphene for high-performance lithium-ion batteries. Chemistry, 2015. 21(11): p. 4359-67.
  • [159] Wang, X.-F., et al., Prussian Blue analogue derived porous NiFe2O4 nanocubes for low-concentration acetone sensing at low working temperature. Chemical Engineering Journal, 2018. 338: p. 504-512.
  • [151] T. A. BITHER, et al., Transition Metal Pyrite Dichalcogenides. High-Pressure Synthesis and Correlation of Properties. Inorganic Chemistry, 1968. 7: p. 2208-2220.
  • [147] Benck, J.D., et al., Amorphous Molybdenum Sulfide Catalysts for Electrochemical Hydrogen Production: Insights into the Origin of their Catalytic Activity. ACS Catalysis, 2012. 2(9): p. 1916-1923.
  • [137] Masa, J. and W. Schuhmann, The Role of Non?Metallic and Metalloid Elements on the Electrocatalytic Activity of Cobalt and Nickel Catalysts for the Oxygen Evolution Reaction. ChemCatChem, 2019. 11(24): p. 5842-5854.
  • [131] Stern, L.-A., et al., Ni2P as a Janus catalyst for water splitting: the oxygen evolution activity of Ni2P nanoparticles. Energy & Environmental Science, 2015. 8(8): p. 2347-2351.
  • [125] Tan, Z., et al., An in situ vapour phase hydrothermal surface doping approach for fabrication of high performance Co3O4 electrocatalysts with an exceptionally high S-doped active surface. Chem Commun (Camb), 2015. 51(26): p. 5695-7.
  • [123] Long, X., et al., Co intake mediated formation of ultrathin nanosheets of transition metal LDH-an advanced electrocatalyst for oxygen evolution reaction. Chem Commun (Camb), 2015. 51(6): p. 1120-3.
  • [117] Vincent, I. and D. Bessarabov, Low cost hydrogen production by anion exchange membrane electrolysis: A review. Renewable and Sustainable Energy Reviews, 2018. 81: p. 1690-1704.
  • [116] J. N. Broughton and a.M.J. Brett, Electrochemical Capacitance in Manganese Thin Films with Chevron Microstructure. Electrochemical and Solid-State Letters, 2002. 5: p. A279-A282.
  • [112] A. Kozawa and a.J.F. Yeager, The Cathodic Reduction Mechanism of Electrolytic Manganese Dioxide in Alkaline Electrolyte Journal of The Electrochemical Society, 1965. 112: p. 959-963.
  • [103] Zhu, J., et al., Recent Advances in Electrocatalytic Hydrogen Evolution Using Nanoparticles. Chem Rev, 2020. 120(2): p. 851-918.
  • Water oxidation catalysis : electrocatalytic response to metal stoichiometry in amorphous metal oxide films containing iron , cobalt , and nickel
    135 ( 31 ) : p. 11580-6 . [2013]
  • Water Splitting Exceeding 17 % Solar-to-Hydrogen Conversion Efficiency Using Solution-Processed Ni-Based Electrocatalysts and Perovskite/Si Tandem Solar Cell
    11 ( 37 ) : p. 33835-33843 . [2019]
  • Water Oxidation Mechanism for 3d Transition Metal Oxide Catalysts under Neutral Condition
    54 ( 1 ) : p. 1-8 [2017]
  • Vertically oriented cobalt selenide/NiFe layered-double-hydroxide nanosheets supported on exfoliated graphene foil : An efficient 3D electrode for overall water splitting ,
    9 ( 2 ) : p. 478-483 . [2016]
  • Ultrathin Porous NiFeV Ternary Layer Hydroxide Nanosheets as a Highly Efficient Bifunctional Electrocatalyst for Overall Water Splitting
    14 ( 8 ) [2018]
  • Ultrathin High Surface Area Nickel Boride ( NixB ) Nanosheets as Highly Efficient Electrocatalyst for Oxygen Evolution
    7 ( 17 ) : p. 1700381 [2017]
  • Ultrafine Pt Nanoparticle-Decorated Pyrite-Type CoS2 Nanosheet Arrays Coated on Carbon Cloth as a Bifunctional Electrode for Overall Water Splitting
    8 ( 24 ) : p. 1800935 . [2018]
  • Tuning Unique Peapod-Like Co ( SxSe1-x ) 2 Nanoparticles for Efficient Overall Water Splitting .
    27 ( 24 ) : p. 1701008 . [2017]
  • Transition metal oxides as electrocatalysts for the oxygen evolution reaction in alkaline solutions : an application-inspired renaissance
    140 ( 25 ) : p. 7748-7759 . [2018]
  • Topotactic Engineering of Ultrathin 2D Nonlayered Nickel Selenides for Full Water Electrolysis .
    8 ( 14 ) : p. 1702704 . [2018]
  • TiO2 hybrid nanostructures : efficient and durable bifunctional electrocatalysts for alkaline electrolyte membrane water electrolyzers
    6 ( 3 ) : p. 1075-1085 [2018]
  • Three-dimensional NiFe layered double hydroxide film for high-efficiency oxygen evolution reaction
    50 ( 49 ) : p. 6479-82 . [2014]
  • The oxygen evolution reaction enabled by transition metal phosphide and chalcogenide pre-catalysts with dynamic changes
    55 ( 60 ) : p. 8744-8763 . [2019]
  • The effects of Al substitution and partial dissolution on ultrathin NiFeAl trinary layered double hydroxide nanosheets for oxygen evolution reaction in alkaline solution
    35 : p. 350-357 [2017]
  • The effect of energetically coated ZrOx on enhanced electrochemical performances of Li ( Ni1/3Co1/3Mn1/3 ) O2 cathodes using modified radio frequency ( RF ) sputtering
    3 ( 24 ) : p. 12982-12991 [2015]
  • The Mechanism of Water Oxidation : From Electrolysis via Homogeneous to Biological Catalysis
    2 ( 7 ) : p. 724-761 [2010]
  • The Fe–Ni system : Thermodynamic modelling assisted by atomistic calculations
    18 ( 6 ) : p. 1148-1162 . [2010]
  • Textured NiSe2 Film : Bifunctional Electrocatalyst for Full Water Splitting at Remarkably Low Overpotential with High Energy Efficiency
    7 ( 1 ) : p. 2401 [2017]
  • Ternary nickel ? iron sulfide microflowers as a robust electrocatalyst for bifunctional water splitting .
    5 ( 30 ) : p. 15838-15844 . [2017]
  • Ternary NiFeMn layered double hydroxides as highly-efficient oxygen evolution catalysts
    52 ( 5 ) : p. 908-11 . [2016]
  • Template-directed synthesis of sulphur doped NiCoFe layered double hydroxide porous nanosheets with enhanced electrocatalytic activity for the oxygen evolution reaction
    6 ( 7 ) : p. 3224-3230 [2018]
  • THE RATE OF ELECTROLYTIC HYDROGEN EVOLUTION AND THE HEAT OF ADSORPTION OF HYDROGEN Transactions of the Faraday Society
    54 : p. 1053-1063 [1958]
  • Synthesis of Nanocrystalline FeS2 with Increased Band Gap for Solar Energy Harvesting .
    30 ( 8 ) : p. 770-775 . [2014]
  • Synthesis and characterization of boron carbon oxynitride films with tunable composition using methane , boric acid and ammonia
    41 ( 17 ) : p. 9497-9504 [2017]
  • Synergism of Geometric Construction and Electronic Regulation : 3D Se( NiCo ) Sx / ( OH ) x Nanosheets for Highly Efficient Overall Water Splitting
    30 ( 12 ) : p. e1705538 [2018]
  • Surface anion-rich NiS2 hollow microspheres derived from metal ? organic frameworks as a robust electrocatalyst for the hydrogen evolution reaction
    5 ( 39 ) : p. 20985-20992 . [2017]
  • Sulphur-doped Co3O4 nanowires as an advanced negative electrode for high-energy asymmetric supercapacitors
    4 ( 28 ) : p. 10779-10785 [2016]
  • Structure-activity correlations in a nickel-borate oxygen evolution catalyst
    134 ( 15 ) : p. 6801-9 . [2012]
  • Single-Atom Au/NiFe Layered Double Hydroxide Electrocatalyst : Probing the Origin of Activity for Oxygen Evolution Reaction
    140 ( 11 ) : p. 3876-3879 [2018]
  • Self-assembly ofCoS2/graphene nanoarchitecture by a facile one-pot route and its improved electrochemical Li-storage properties
    2 ( 1 ) : p. 49-56 . [2013]
  • Self-Interconnected Porous Networks of NiCo Disulfide as Efficient Bifunctional Electrocatalysts for Overall Water Splitting .
    10 ( 33 ) : p. 27723-27733 [2018]
  • Role of dissolution of Mn ( III ) species in discharge and recharge ofChemically-modified MnO2 batteryCathode materials
    23 : p. 693-706 . [1993]
  • Recent progress made in the mechanismComprehension and design of electrocatalysts for alkaline water splitting
    12 ( 9 ) : p. 2620-2645 . [2019]
  • Recent developments in solar water-splitting photocatalysis
    36 ( 1 ) : p. 17-22 . [2011]
  • Recent advances in layered double hydroxide electrocatalysts for the oxygen evolution reaction
    7 ( 10 ) : p. 5069-5089 [2019]
  • Recent advances in hydrogen evolution reactionCatalysts onCarbon/carbon-based supports in acid media
    398 : p. 9-26 . [2018]
  • Recent advances in heterogeneous electrocatalysts for the hydrogen evolution reaction
    3 ( 29 ) : p. 14942-14962 . [2015]
  • Recent Progress on Layered Double Hydroxides and Their Derivatives for Electrocatalytic Water Splitting
    5 ( 8 ) : p. 1800064 [2018]
  • Recent Advances on Water ? Splitting Electrocatalysis Mediated by Noble ? Metal ? Based Nanostructured Materials
    10 ( 11 ) : p. 1903120 . [2020]
  • Reaction mechanism for oxygen evolution on RuO2 , IrO2 , and RuO2 @ IrO2Core-shell nanocatalysts .
    819 : p. 296-305 . [2018]
  • Rational Design of High-Performance DeNOxCatalysts Based on MnxCo3 ? xO4 Nanocages Derived from Metal ? Organic Frameworks
    4 ( 6 ) : p. 1753-1763 . [2014]
  • Pyrite FeS2/C nanoparticles as an efficient bi-functionalCatalyst for overall water splitting
    47 ( 42 ) : p. 14917-14923 . [2018]
  • Prussian blue : a new framework of electrode materials for sodium batteries
    48 ( 52 ) : p. 6544-6 . [2012]
  • Predictive fabrication of Ni phosphide embedded inCarbon nanofibers as active and stable electrocatalysts .
    7 ( 13 ) : p. 7451-7458 [2019]
  • Phosphorus-doped CoS2 nanosheet arrays as ultra-efficient electrocatalysts for the hydrogen evolution reaction
    51 ( 75 ) : p. 14160-3 . [2015]
  • Phase-controlled synthesis of cobalt sulfides for lithium ion batteries .
    4 ( 8 ) : p. 4246-50 [2012]
  • Phase Exploration and Identification of Multinary Transition-Metal Selenides as High-Efficiency Oxygen Evolution Electrocatalysts through Combinatorial Electrodeposition .
    8 ( 9 ) : p. 8273-8289 . [2018]
  • One-step synthesis of nickel ? iron layered double hydroxides with tungstate acid anions via flash nano-precipitation for the oxygen evolution reaction
    3 ( 1 ) : p. 237-244 . [2019]
  • On the role of hydroxide species in sulphur- and nitrogen-doped cobalt-based carbon catalysts for the oxygen evolution reaction
    6 ( 44 ) : p. 22310-22319 . [2018]
  • Oh. S.M., Electrochemistry, FREEACADEMY, , IBSN: 9788973388264 (오승모 저, 전기화학
    자유아카데미, 2010) [2010]
  • Nitrogen doped NiS2 nanoarrays with enhanced electrocatalytic activity for water oxidation
    5 ( 34 ) : p. 17811-17816 [2017]
  • Nickel-iron oxyhydroxide oxygen-evolution electrocatalysts : the role of intentional and incidental iron incorporation .
    136 ( 18 ) : p. 6744-53 . [2014]
  • NiS2 nanodotted carnation-like CoS2 for enhanced electrocatalytic water splitting .
    55 ( 26 ) : p. 3781-3784 . [2019]
  • Multiscale simulation and modelling of adsorptive processes for energy gas storage and carbon dioxide capture in porous coordination frameworks .
    3 ( 10 ) : p. 1469 . [2010]
  • MonitoringB-site ordering and strain relaxation in NiFe2O4epitaxial films by polarized Raman spectroscopy
    83 ( 1 ) . [2011]
  • Metal-organic Framework-driven Porous Cobalt Disulfide Nanoparticles Fabricated by Gaseous Sulfurization as Bifunctional Electrocatalysts for Overall Water Splitting .
    9 ( 1 ) : p. 19539 . [2019]
  • Metal Organic Framework-Templated Synthesis of Bimetallic Selenides with Rich Phase Boundaries for Sodium-Ion Storage and Oxygen Evolution Reaction
    13 ( 5 ) : p. 5635-5645 . [2019]
  • MOF Template-Directed Fabrication of Hierarchically Structured Electrocatalysts for Efficient Oxygen Evolution Reaction
    7 ( 12 ) : p. 1602643 . [2017]
  • Low-Temperature Hydrothermal Synthesis of Mn3O4 and MnOOH Single Crystals : Determinant Influence of Oxidants .
  • Layered Metal Boride Hollow Nanoprism as an Excellent and Robust Water Oxidation Electrocatalysts
    9 ( 13 ) : p. 1803799 [2019]
  • Janus Co/CoP nanoparticles as efficient Mott–Schottky electrocatalysts for overall water splitting in wide pH range
    7 ( 12 ) : p. 1602355 [2017]
  • Integrated Three-Dimensional Carbon Paper/Carbon Tubes/Cobalt-Sulfide Sheets as an Efficient Electrode for Overall Water Splitting .
    10 ( 2 ) : p. 2342-8 . [2016]
  • Infrared study of boron ? carbon chemical bonds in boron-doped activated carbon
    54 : p. 208-214 . [2013]
  • In situ structural evolution of a nickel boride catalyst : synergistic geometric and electronic optimization for the oxygen evolution reaction
    7 ( 10 ) : p. 5288-5294 . [2019]
  • In situ electrochemical oxidation tuning of transition metal disulfides to oxides for enhanced water oxidation
    1 ( 5 ) : p. 244-51 . [2015]
  • In situ FTIR Spectroscopy as a Tool for Investigation of Gas/Solid Interaction : Water-Enhanced CO2 Adsorption in UiO-66 Metal-Organic Framework .
    2020 ( 156 ) .
  • In Situ Preparation of Mo2C Nanoparticles Embedded in Ketjenblack Carbon as Highly Efficient Electrocatalysts for Hydrogen Evolution
    6 ( 1 ) : p. 983-990 [2017]
  • In Situ Grown Pristine Cobalt Sulfide as Bifunctional Photocatalyst for Hydrogen and Oxygen Evolution
    27 ( 11 ) : p. 1605846 [2017]
  • In Situ Electrochemically Derived Nanoporous Oxides from Transition Metal Dichalcogenides for Active Oxygen Evolution Catalysts
    16 ( 12 ) : p. 7588-7596 . [2016]
  • Improved Battery Performance of Nanocrystalline Si Anodes Utilized by Radio Frequency ( RF ) Sputtered Multifunctional Amorphous Si Coating Layers
    10 ( 3 ) : p. 2242-2248 . [2018]
  • Impact of morphology on the oxygen evolution reaction of 3D hollow Cobalt-Molybdenum Nitride .
    255 : p. 117744 . [2019]
  • Hydrothermal continuous flow synthesis and exfoliation of NiCo layered double hydroxide nanosheets for enhanced oxygen evolution catalysis
    15 ( 2 ) : p. 1421-7 [2015]
  • Hydrogen electrochemistry on platinum low-index single-crystal surfaces in alkaline solution
    92 ( 20 ) : p. 3719-3725 . [1996]
  • Hydrogen Oxidation on PdIr/C Catalysts in Alkaline Media
    161 ( 4 ) : p. F458-463 . [2014]
  • Hydrogen Oxidation and Evolution Reaction Kinetics on Platinum : Acid vs Alkaline Electrolytes .
    157 ( 11 ) : p. B1529-B1536 [2010]
  • Hydrogen Evolution on Pt Single Crystal Surfaces . Effects of Irreversibly Adsorbed Bismuth and Antimony on Hydrogen Adsorption and Evolution on Pt ( 100 )
    97 : p. 4769-4776 [1993]
  • Hollow nanospheres constructed by CoS2 nanosheets with a nitrogen-doped-carbon coating for energy-storage and photocatalysis
    7 ( 8 ) : p. 2212-20 . [2014]
  • Hollow mesoporous NiCo2O4 nanocages as efficient electrocatalysts for oxygen evolution reaction
    44 ( 9 ) : p. 4148-54 . [2015]
  • Hollow TiO2 @ Co9S8 Core-Branch Arrays as Bifunctional Electrocatalysts for Efficient Oxygen/Hydrogen Production .
    5 ( 3 ) : p. 1700772 . [2018]
  • Highly efficient oxygen evolution from CoS2/CNT nanocomposites via a one-step electrochemical deposition and dissolution method
    9 ( 20 ) : p. 6886-6894 . [2017]
  • Highly active nanostructured CoS2/CoS heterojunction electrocatalysts for aqueous polysulfide/iodide redox flow batteries
    10 ( 1 ) : p. 3367 [2019]
  • Highly Diastereoselective Palladium-Catalyzed Oxidative Carbocyclization of Enallenes Assisted by a Weakly Coordinating Hydroxyl Group
    140 ( 9 ) : p. 3210-3214 . [2018]
  • Highly Active Trimetallic NiFeCr Layered Double Hydroxide Electrocatalysts for Oxygen Evolution Reaction
    8 ( 15 ) : p. 1703189 [2018]
  • High-performance oxygen evolution electrocatalysis by boronized metal sheets with self-functionalized surfaces
    12 ( 2 ) : p. 684-692 . [2019]
  • High-Performance Overall Water Splitting Electrocatalysts Derived from Cobalt-Based Metal– Organic Frameworks ,
    27 ( 22 ) : p. 7636-7642 . [2015]
  • High-Performance Electrocatalysis Using Metallic Cobalt Pyrite ( CoS2 ) Micro- and Nanostructures ,
    136 ( 28 ) : p. 10053-61 . [2014]
  • Hierarchical NiCo2S4 Nanowire Arrays Supported on Ni Foam : An Efficient and Durable Bifunctional Electrocatalyst for Oxygen and Hydrogen Evolution Reactions
    26 ( 26 ) : p. 4661-4672 [2016]
  • Heterogeneous electrocatalysts design for nitrogen reduction reaction under ambient conditions
    27 : p. 69-90 . [2019]
  • Hemi-core @ frame AuCu @ IrNi nanocrystals as active and durable bifunctional catalysts for the water splitting reaction in acidic media
    4 ( 3 ) : p. 727-734 . [2019]
  • Guidelines for the Rational Design of Ni-Based Double Hydroxide Electrocatalysts for the Oxygen Evolution Reaction
    5 ( 9 ) : p. 5380-5387 . [2015]
  • Foamlike porous spinel Mn ( x ) Co ( 3-x ) O4 material derived from Mn3 2nH2O nanocubes : a highly efficient anode material for lithium batteries
    18 ( 47 ) : p. 15049-56 . [2012]
  • Fast fabrication of self-supported porous nickel phosphide foam for efficient , durable oxygen evolution and overall water splitting .
    4 ( 15 ) : p. 5639-5646 . [2016]
  • Fast electrosynthesis of Fe-containing layered double hydroxide arrays toward highly efficient electrocatalytic oxidation reactions
    6 ( 11 ) : p. 6624-6631 [2015]
  • Facile preparation of Prussian blue analogue Co3 2with fine-tuning color transition temperature as thermochromic material
    19 ( 15 ) : p. 2057-2064 . [2017]
  • Exfoliation of layered double hydroxides for enhanced oxygen evolution catalysis
    5 : p. 4477 [2014]
  • Electronic Structure Reconfiguration toward Pyrite NiS2 via Engineered Heteroatom Defect Boosting Overall Water Splitting
    11 ( 11 ) : p. 11574-11583 [2017]
  • Electrodeposition of hierarchically structured three-dimensional nickel-iron electrodes for efficient oxygen evolution at high current densities
    6 : p. 6616 [2015]
  • Electrochemical oxygen evolution reaction efficiently catalyzed by a novel porous iron-cobalt-fluoride nanocube easily derived from 3-dimensional Prussian blue analogue .
    424 : p. 131-137 . [2019]
  • Electrochemical CO2 reduction : Electrocatalyst , reaction mechanism , and process engineering
    29 : p. 439-456 . [2016]
  • Electrocatalytic oxygen evolution reaction for energy conversion and storage : A comprehensive review
    37 : p. 136-157 . [2017]
  • Electrocatalytic Oxygen Evolution Reaction ( OER ) on Ru , Ir , and Pt Catalysts : A Comparative Study of Nanoparticles and Bulk Materials
    2 ( 8 ) : p. 1765-1772 . [2012]
  • Electrocatalysts for Hydrogen Evolution in Alkaline Electrolytes : Mechanisms , Challenges , and Prospective Solutions
    5 ( 2 ) : p. 1700464 . [2018]
  • Electrocatalysis for the oxygen evolution reaction : recent development and future perspectives
    46 ( 2 ) : p. 337-365 . [2017]
  • Efficient noble metal-free ( electro ) catalysis of water and alcohol oxidations by zinc-cobalt layered double hydroxide
    135 ( 46 ) : p. 17242-5 . [2013]
  • Efficient hydrogen evolution catalysis using ternary pyrite-type cobalt phosphosulphide .
    14 ( 12 ) : p. 1245-51 . [2015]
  • Effective Fabrication and Electrochemical Oxygen Evolution Reaction Activity of Gold Multipod Nanoparticle Core ? Cobalt Sulfide Shell Nanohybrids
    2 ( 2 ) : p. 678-688 [2019]
  • Effect of interlayer anions on -LDH nanosheet water oxidation activity
    9 ( 5 ) : p. 1734-1743 . [2016]
  • Effect of duration of sonication during gelatinization on properties of tapioca starch water hyacinth fiber biocomposite
    108 : p. 167-176 [2018]
  • Earth-abundant catalysts for electrochemical and photoelectrochemical water splitting
    1 ( 1 ) . [2017]
  • Earth-Abundant Metal Pyrites ( FeS2 , CoS2 , NiS2 , and Their Alloys ) for Highly Efficient Hydrogen Evolution and Polysulfide Reduction Electrocatalysis .
    118 ( 37 ) : p. 21347-21356 . [2014]
  • Doping Effect on Mn3O4 Nanoparticles for Electrochemical Water Oxidation under Neutral Condition
    4 ( 3 ) : p. 1900733 . [2020]
  • Direct Synthesis and Anion Exchange of Noncarbonate-Intercalated NiFe-Layered Double Hydroxides and the Influence on Electrocatalysis
    30 ( 13 ) : p. 4321-4330 . [2018]
  • Designing thermal and electrochemical oxidation processes for δ-MnO2 nanofibers for high-performance electrochemical capacitors
    2 ( 20 ) : p. 7197-7204 . [2014]
  • Density functional theory calculations for the hydrogen evolution reaction in an electrochemical double layer on the Pt ( 111 ) electrode
    9 ( 25 ) : p. 3241-50 [2007]
  • Controllable synthesis of nickel sulfide nanocatalysts and their phase-dependent performance for overall water splitting
    11 ( 12 ) : p. 5646-5654 . [2019]
  • Combining theory and experiment in electrocatalysis : Insights into materials design
    355 ( 6321 ) [2017]
  • Cobalt-molybdenum nanosheet arrays as highly efficient and stable earth-abundant electrocatalysts for overall water splitting
    45 : p. 448-455 . [2018]
  • Cobalt-Rich Core-Shell Electrocatalyst as an Oxygen Electrode in a Water Electrolyzer
    8 ( 14 ) : p. 1702838 . [2018]
  • CoSe ( 2 ) and NiSe ( 2 ) Nanocrystals as Superior Bifunctional Catalysts for Electrochemical and Photoelectrochemical Water Splitting .
    8 ( 8 ) : p. 5327-34 [2016]
  • CoS2 hollow nanocubes derived from CoCo Prussian blue analogue : High-performance electrode materials for supercapacitors
    836 : p. 30-37 . [2019]
  • Chronoamperometric Versus Galvanostatic Preparation of Manganese Oxides for Electrochemical Capacitors
    158 ( 10 ) : p. A1160-A1165 . [2011]
  • Chemically Deposited Amorphous Zn-Doped NiFeOxHy for Enhanced Water Oxidation
    10 ( 1 ) : p. 235-244 . [2019]
  • Catalytic applications of layered double hydroxides : recent advances and perspectives
    43 ( 20 ) : p. 7040-66 [2014]
  • Carbon-armored Co9S8 nanoparticles as all-pH efficient and durable H2-evolving electrocatalysts .
    7 ( 1 ) : p. 980-8 . [2015]
  • Carbon-Incorporated Nickel-Cobalt Mixed Metal Phosphide Nanoboxes with Enhanced Electrocatalytic Activity for Oxygen Evolution
    56 ( 14 ) : p. 3897-3900 [2017]
  • Bifunctional Porous NiFe/NiCo2O4/Ni Foam Electrodes with Triple Hierarchy and Double Synergies for Efficient Whole Cell Water Splitting
    26 ( 20 ) : p. 3515-3523 [2016]
  • Bifunctional Nickel Phosphide Nanocatalysts Supported on Carbon Fiber Paper for Highly Efficient and Stable Overall Water Splitting
    26 ( 23 ) : p. 4067-4077 [2016]
  • Biaxiallystrained PtPb/Ptcore/shell nanoplateboosts oxygen reduction catalysis .
    354 . [2016]
  • Benchmarking hydrogen evolving reaction and oxygen evolving reaction electrocatalysts for solar water splitting devices
    137 ( 13 ) : p. 4347-57 [2015]
  • Artificial photosynthesis for solar water-splitting
    6 ( 8 ) : p. 511-518 . [2012]
  • An iron oxide photoanode with hierarchical nanostructure for efficient water oxidation
    2 ( 7 ) : p. 2297-2305 [2014]
  • An investigation of thin-film Ni-Fe oxide catalysts for the electrochemical evolution of oxygen
    135 ( 33 ) : p. 12329-37 . [2013]
  • An amorphous LiO2-based Li-O2 battery with low overpotential and high rate capability .
    41 : p. 535-542 . [2017]
  • An advanced Ni–Fe layered double hydroxide electrocatalyst for water oxidation
    135 ( 23 ) : p. 8452-5 . [2013]
  • Advanced alkaline water electrolysis .
    82 : p. 384-391 . [2012]
  • Activation of a Ni electrocatalyst through spontaneous transformation of nickel sulfide to nickel hydroxide in an oxygen evolution reaction
    233 : p. 130-135 . [2018]
  • A review on noble-metal-free bifunctional heterogeneous catalysts for overall electrochemical water splitting .
    4 ( 45 ) : p. 17587-17603 . [2016]
  • A novel chemical synthesis of Mn3O4 thin film and its stepwise conversion into birnessite MnO2 during super capacitive studies
    647 ( 1 ) : p. 60-65 . [2010]
  • A nickel iron diselenide-derived efficient oxygen-evolution catalyst
    7 : p. 12324 . [2016]
  • A new hematite photoanode doping strategy for solar water splitting : oxygen vacancy generation
    15 ( 6 ) : p. 2117-24 [2013]
  • A metallic CoS2 nanopyramid array grown on 3D carbon fiber paper as an excellent electrocatalyst for hydrogen evolution
    3 ( 12 ) : p. 6306-6310 [2015]
  • A facile method to synthesize boron-doped Ni/Fe alloy nano-chains as electrocatalyst for water oxidation
    349 : p. 68-74 . [2017]
  • A Heterostructure Coupling of Exfoliated Ni-Fe Hydroxide Nanosheet and Defective Graphene as a Bifunctional Electrocatalyst for Overall Water Splitting
    29 ( 17 ) . [2017]
  • 3D Architectures of Quaternary CoNi-S-P/Graphene Hybrids as Highly Active and Stable Bifunctional Electrocatalysts for Overall Water Splitting
    8 ( 33 ) : p. 1802319 . [2018]