Crossref journal-article
Elsevier BV
Renewable and Sustainable Energy Reviews (78)
Bibliography

Wang, M., Wang, Z., Gong, X., & Guo, Z. (2014). The intensification technologies to water electrolysis for hydrogen production – A review. Renewable and Sustainable Energy Reviews, 29, 573–588.

Authors 4
  1. Mingyong Wang (first)
  2. Zhi Wang (additional)
  3. Xuzhong Gong (additional)
  4. Zhancheng Guo (additional)
References 140 Referenced 852
  1. 10.1016/j.ijhydene.2008.05.047 / International Journal of Hydrogen Energy / Potential important of hydrogen as a future solution to environmental and transportation problems by Balat (2008)
  2. 10.1016/j.ijhydene.2008.11.014 / International Journal of Hydrogen Energy / The future of hydrogen-opportunities and challenges by Ball (2009)
  3. 10.1016/j.cattod.2008.08.039 / Catalysis Today / An overview of hydrogen production technologies by Hollada (2009)
  4. 10.1016/j.ijhydene.2012.08.056 / International Journal of Hydrogen Energy / Ni-based catalysts for reforming of methane with CO2 by Damyanova (2012)
  5. 10.1149/1.1344516 / Journal of The Electrochemical Society / Model for polymer electrolyte fuel cell operation on reformate feed effects of CO, H2 dilution, and high fuel utilization by Springer (2001)
  6. 10.1595/003214002X463117135 / Platinum Metals Review / Catalysis for low temperature fuel cells by Ralph (2002)
  7. 10.1016/j.jpowsour.2006.12.012 / Journal of Power Sources / A review of PEM hydrogen fuel cell contamination: impacts, mechanisms, and mitigation by Cheng (2007)
  8. 10.1016/j.jpowsour.2012.07.015 / Journal of Power Sources / Spatial proton exchange membrane fuel cell performance under carbon monoxide poisoning at a low concentration using a segmented cell system by Reshetenko (2012)
  9. 10.1016/j.jpowsour.2012.07.095 / Journal of Power Sources / Catalytic preferential oxidation of carbon monoxide over platinum supported on lanthanum ferrite-ceria catalysts for cleaning of hydrogen by Gosavi (2013)
  10. 10.1016/0360-3199(83)90162-3 / International Journal of Hydrogen Energy / Industrial water electrolysis-present and future by Leroy (1983)
  11. 10.1016/j.solener.2005.01.002 / Solar Energy / Wind energy and the hydrogen economy-review of the technology by Sherif (2005)
  12. 10.1016/j.ces.2012.08.023 / Chemical Engineering Science / Solar thermal decoupled water electrolysis process I: proof of concept by Palumbo (2012)
  13. 10.1016/j.renene.2012.02.015 / Renewable Energy / Data mining and wind power prediction: a literature review by Colak (2012)
  14. 10.1016/j.renene.2012.06.051 / Renewable Energy / Potential of renewable energy in electrical energy production and sustainable energy development of Turkey: performance and polices by Benli (2013)
  15. 10.1016/j.renene.2012.08.002 / Renewable Energy / Wind energy really is the last to be stored and solar energy cannot be stored economically by Swift-Hook (2013)
  16. 10.1016/j.rser.2012.09.005 / Renewable & Sustainable Energy Reviews / An optimization model for renewable energy generation and its application in China: a perspective of maximum utilization by Cong (2013)
  17. 10.1016/j.ijhydene.2010.09.099 / International Journal of Hydrogen Energy / Photovoltaic-assisted alkaline water electrolysis: basic principles by Djafour (2011)
  18. 10.1021/ef060491u / Energy & Fuels / Renewable hydrogen production: performance of an alkaline water electrolyzer working under emulated wind conditions by Gandia (2007)
  19. 10.1016/j.solener.2004.09.003 / Solar Energy / PEM electrolysis for production of hydrogen from renewable energy sources by Barbir (2005)
  20. Experimental wind to hydrogen system up and running, 〈http://www.physorg.com/news87494328.html〉.
  21. 10.1016/j.elecom.2009.09.010 / Electrochemistry Communications / A single-step approach to create nano-pottery structures for efficient water electrocatalysis by Yi (2009)
  22. 10.1039/c003826c / Physical Chemistry Chemical Physics / Screening of electrocatalytic materials for hydrogen evolution by Björketun (2010)
  23. 10.1039/c2ee02618j / Energy and Environmental Science / Molybdenum sulfides-efficient and viable materials for electro-and photoelectrocatalytic hydrogen evolution by Laursen (2012)
  24. 10.1002/cphc.200500646 / ChemPhysChem / Hydrogen electrocatalysis by Kibler (2006)
  25. 10.1016/j.ccr.2012.01.015 / Coordination Chemistry Reviews / Transition metal complexes that catalyze oxygen formation from water: 1979–2010 by Liu (2012)
  26. 10.1039/C2EE23513G / Energy and Environmental Science / Enhanced electrocatalytic activity for hydrogen evolution reaction from self-assembled monodispersed molybdenum sulfide nanoparticles on an Au electrode by Wang (2013)
  27. 10.1039/c2ee22554a / Energy and Environmental Science / Oxygen electrocatalysts for water electrolyzers and reversible fuel cells: status and perspective by Park (2012)
  28. 10.1021/jp710675m / Journal of Physical Chemistry C / Metal oxide catalysts for the evolution of O2 from H2O by Merrill (2008)
  29. 10.1016/j.jpowsour.2005.09.007 / Journal of Power Sources / Ni and Ni–Mo hydrogen evolution electrocatalysts electrodeposited in a polyaniline matrix by Damian (2006)
  30. 10.1039/c2jm31439h / Journal of Materials Chemistry / Electrodeposited Ni dendrites with high activity and durability for hydrogen evolution reaction in alkaline water electrolysis by Ahn (2012)
  31. 10.1016/j.cattod.2008.12.007 / Catalysis Today / Electrocatalytic activity of Ni nanowires prepared by galvanic electrodeposition for hydrogen evolution reaction by Lee (2009)
  32. 10.1016/j.ijhydene.2010.12.116 / International Journal of Hydrogen Energy / The enhanced electrocatalytic activity and stability of NiW films electrodeposited under super gravity field for hydrogen evolution reaction by Wang (2011)
  33. 10.1016/j.ijhydene.2012.04.042 / International Journal of Hydrogen Energy / Effect of microstructure on the electrocatalytic activity for hydrogen evolution of amorphous and nanocrystalline Zr–Ni alloys by Mihailov (2012)
  34. 10.1016/j.ijhydene.2010.03.093 / International Journal of Hydrogen Energy / A study on pulse plating amorphous Ni–Mo alloy coating used as HER cathode in alkaline medium by Han (2010)
  35. 10.1016/j.ijhydene.2011.05.047 / International Journal of Hydrogen Energy / Assessment of the roughness factor effect and the intrinsic catalytic activity for hydrogen evolution reaction on Ni-based electrodeposits by Herraiz-Cardona (2011)
  36. 10.1023/A:1003961513139 / Journal of Applied Electrochemistry / Effective solution resistivity in beds containing one monolayer or multilayers of uniform spherical glass beads by Janssen (2000)
  37. 10.1149/1.2207008 / Journal of The Electrochemical Society / Ohmic resistance measurement of bubble Froth layer in water electrolysis under microgravity by Kiuchi (2006)
  38. 10.1016/S0096-3003(03)00731-8 / Applied Mathematics and Computation / Application of a two-phase flow model for hydrogen evolution in an electrochemical cell by Aldas (2004)
  39. 10.1016/j.electacta.2005.11.046 / Electrochimica Acta / Water electrolysis under microgravity Part II: description of gas bubble evolution phenomena by Matsushima (2006)
  40. Krenz M. Untersuchung des elektrodennahen Raumes gasentwickelnder Elektroden. Dissertation A, Humboldt-Universitat: Berlin; 1984 (10.1515/zpch-1984-265140)
  41. 10.1149/1.1524185 / Journal of the Electrochemical Society / Effect of electrolyte flow on the bubble coverage of vertical gas-evolving electrodes by Balzer (2003)
  42. 10.1149/1.2100456 / Journal of the Electrochemical Society / The influence of attached bubbles on potential drop and current distribution at gas-evolving electrodes by Dukovic (1987)
  43. 10.1016/0890-4332(93)90003-E / Heat Recovery Systems and CHP / The opportunities for exploiting centrifugal fields by Ramshaw (1993)
  44. 10.1023/A:1003447913204 / Journal of Applied Electrochemistry / Bubble coverage and bubble resistance using cells with horizontal electrode by Qian (1998)
  45. 10.1016/j.ijhydene.2008.04.047 / International Journal of Hydrogen Energy / Numerical and experimental investigation of two-phase flow in an electrochemical cell by Aldas (2008)
  46. 10.1007/s10008-011-1392-x / Journal of Solid State Electrochemistry / Observe of bubble layer formed on hydrogen and oxygen gas-evolving electrode in a magnetic field by Matsushima (2012)
  47. 10.1149/1.2427505 / Journal of the Electrochemical Society / On the conductivity of dispersions by De La Rue (1959)
  48. 10.1016/j.cep.2007.10.018 / Chemical Engineering and Processing / Two-phase electrolysis process: from the bubble to the electrochemical cell properties by Mandin (2008)
  49. 10.1023/A:1003961513139 / Journal of Applied Electrochemistry / Effective solution resistivity in beds containing one monolayer or multilayers of uniform spherical glass beads by Janssen (2000)
  50. 10.1016/j.electacta.2009.01.087 / Electrochimica Acta / Water electrolysis in the presence of an ultrasonic field by Li (2009)
  51. 10.1016/S0013-4686(00)00513-2 / Electrochimica Acta / The bubble coverage of gas-evolving electrodes in a flowing electrolyte by Eigeldinger (2000)
  52. 10.1021/ie301029e / Industrial & Engineering Chemistry Research / Evaluating the behavior of electrolytic gas bubbles and their effect on the cell voltage in alkaline water electrolysis by Zhang (2012)
  53. 10.1016/S0257-8972(03)00860-0 / Surface and Coatings Technology / Effects of magnetic fields on iron electrodeposition by Matsushima (2004)
  54. 10.1016/j.electacta.2010.08.004 / Electrochimica Acta / Influence of magnetic field on hydrogen reduction and co-reduction in the Cu/CuSO4 system by Fernández (2010)
  55. 10.1016/j.electacta.2010.09.033 / Electrochimica Acta / Magnetic field effects on the mass transport at small electrodes studied by voltammetry and magnetohydrodynamic impedance measurements by Peipmann (2010)
  56. 10.1149/1.2742807 / Electrochemical Society / Water electrolysis under a magnetic field by Iida (2007)
  57. 10.1016/j.ijhydene.2011.10.024 / International Journal of Hydrogen Energy / The effect of magnetic force on hydrogen production efficiency in water electrolysis by Lin (2012)
  58. 10.1016/j.electacta.2009.05.044 / Electrochemica Acta / Measurement of dissolved hydrogen supersaturation during water electrolysis in a magnetic field by Matsushima (2009)
  59. 10.1016/j.elecom.2008.07.003 / Electrochemistry Communications / Desorption of hydrogen from the electrode surface under influence of an external magnetic field by Koza (2008)
  60. 10.1016/j.electacta.2012.05.082 / Electrochimica Acta / Gas bubble evolution on transparent electrode during water electrolysis in a magnetic field by Matsushima (2013)
  61. 10.1016/j.electacta.2010.12.031 / Electrochimica Acta / Hydrogen evolution under the influence of a magnetic field by Koza (2011)
  62. 10.1016/j.memsci.2011.10.050 / Journal of Membrane Science / Influences of a bipolar membrane and an ultrasonic field on alkaline water electrolysis by Hung (2012)
  63. 10.1016/j.seppur.2007.05.012 / Separation and Purification Technology / Recent developments in centrifuge technology by Anlauf (2007)
  64. 10.1002/adma.200702353 / Advanced Materials / Length fractionation of carbon nanotubes using centrifugation by Fagan (2008)
  65. 10.1007/s11663-010-9376-2 / Metallurgical and Materials Transactions B / Removal of low-content impurities from Al by super-gravity by Zhao (2010)
  66. 10.1016/S1003-6326(11)61270-3 / Transactions of Nonferrous Metals Society of China / Si purification by solidification of Al–Si melt with super gravity by Li (2012)
  67. 10.1149/1.1354617 / Journal of the Electrochemical Society / Effect of centrifugal force on electrodeposition of Hg2+ and Pb2+ at a spinning graphite electrode by Lin (2001)
  68. 10.1023/A:1020170627227 / Journal of Applied Electrochemistry / Chlorine evolution in a centrifugal field by Cheng (2002)
  69. 10.1143/JJAP.42.4520 / Japanese Journal of Applied Physics / Electrochemical reaction in a high gravity field vertical to an electrode surface-analysis of diffusion process with a gravity electrode by Sato (2003)
  70. 10.1016/j.electacta.2004.07.037 / Electrochimica Acta / Anodic polymerization of aromatic compounds in centrifugal fields by Atobe (2004)
  71. 10.1016/S0378-7753(03)00526-3 / Journal of Power Sources / Improvement in methanol oxidation in a centrifugal field by Cheng (2003)
  72. 10.1016/j.electacta.2007.01.044 / Electrochimica Acta / Prediction of the electrodeposition process behavior with the gravity or acceleration value at continuous and discrete scale by Mandin (2007)
  73. 10.1016/S1003-6326(09)60271-5 / Transactions of Nonferrous Metals Society of China / Preparation of electrolytic copper powders with high current efficiency enhanced by super gravity field and its mechanism by Wang (2010)
  74. 10.1007/s10800-011-0275-2 / Journal of Applied Electrochemistry / Process intensification: water electrolysis in a centrifugal acceleration field by Lao (2011)
  75. 10.1149/1.1512916 / Journal of the Electrochemical Society / Intensification of water electrolysis in a centrifugal field by Cheng (2002)
  76. 10.1016/j.ijhydene.2010.01.128 / International Journal of Hydrogen Energy / Water electrolysis enhanced by super gravity field for hydrogen production by Wang (2010)
  77. 10.1016/j.ijhydene.2009.05.043 / International Journal of Hydrogen Energy / Understanding of the intensified effect of super gravity on hydrogen evolution reaction by Wang (2009)
  78. 10.1016/j.ijhydene.2004.04.002 / International Journal of Hydrogen Energy / Application of a two-phase flow modal for natural convection in an electrochemical cell by Mat (2005)
  79. 10.1016/j.jpowsour.2004.01.005 / Journal of Power Sources / Ionic activators in the electrolytic production of hydrogen-cost reduction-analysis of the cathode by Kaninski (2004)
  80. 10.1016/j.apcata.2007.01.036 / Applied Catalysis A: General / Catalytic activity of Pt-based intermetallics for the hydrogen production-Influence of ionic activator by Kaninski (2007)
  81. 10.1016/j.ijhydene.2011.04.144 / International Journal of Hydrogen Energy / Energy consumption and stability of the Ni-Mo electrodes for the alkaline hydrogen production at industrial conditions by Kaninski (2011)
  82. 10.1016/j.apcata.2011.07.017 / Applied Catalysis A: General / Energy consumption of the electrolytic hydrogen production using Ni–W based activators – Part I by Maksic (2011)
  83. 10.1016/j.apcata.2011.07.015 / Applied Catalysis A: General / Electrochemical characterization of the Ni-W catalyst formed in situ during alkaline electrolytic hydrogen production – Part II by Kaninski (2011)
  84. 10.1016/S0378-7753(03)00077-6 / Journal of Power Sources / Hydrogen generation from water electrolysis-possibilities of energy saving by Stojic (2003)
  85. 10.1016/j.ijhydene.2010.08.069 / International Journal of Hydrogen Energy / Raising efficiency of hydrogen generation from alkaline water electrolysis – energy saving by Nikolic (2010)
  86. 10.1016/j.ijhydene.2011.06.081 / International Journal of Hydrogen Energy / Characterization of the Ni–Mo catalyst formed in situ during hydrogen generation from alkaline water electrolysis by Tasic (2011)
  87. 10.1016/j.electacta.2006.10.011 / Electrochimica Acta / Water electrolysis on carbon electrodes enhanced by surfactant by Wei (2007)
  88. 10.1023/A:1020153519978 / Journal of Applied Electrochemistry / Ir-based oxide electrodes: oxygen evolution reaction from mixed solvent by Rossi (2002)
  89. 10.1023/A:1024084924058 / Journal of Applied Electrochemistry / Electrochemical oxidation of water on synthetic boron-doped diamond thin alloy anodes by Michaud (2003)
  90. 10.1016/j.elecom.2005.10.036 / Electrochemistry Communications / Dialkylimidazolium ionic liquids as electrolytes for hydrogen production from water electrolysis by Souza (2006)
  91. 10.1039/c2cp23801b / Physical Chemistry Chemical Physics / The hydrogen evolution reaction in a room temperature ionic liquid: mechanism and electrocatalyst trends by Meang (2012)
  92. 10.1016/j.jpowsour.2006.11.049 / Journal of Power Sources / Electrochemical hydrogen production from water electrolysis using ionic liquid as electrolytes: towards the best device by Souza (2007)
  93. 10.1016/j.elecom.2008.08.029 / Electrochemistry Communications / Molybdenum electrodes for hydrogen production by water electrolysis using ionic liquid electrolytes by Souza (2008)
  94. 10.1073/pnas.1120208109 / Proceedings of the National Academy of Sciences / Acidic ionic liquid/water solution as both medium and proton source for electrocatalytic H2 evolution by [Ni(P2N2)2]2+ complexes by Pool (2012)
  95. 10.1016/j.pecs.2009.11.002 / Progress in Energy and Combustion / Recent progress in alkaline water electrolysis for hydrogen production and applications by Zeng (2010)
  96. 10.1039/b718822f / Journal of Materials Chemistry / Highly efficient high temperature electrolysis by Hauch (2008)
  97. 10.1016/j.ssi.2006.10.009 / Solid State Ionics / Fabrication and characterization of Y2O3 stabilized ZrO2 films deposited with aerosol-assisted MOCVD by Jiang (2007)
  98. 10.1016/j.ijhydene.2012.05.063 / International Journal of Hydrogen Energy / Preparation and electrochemical behavior of dense YSZ film for SOEC by Yu (2012)
  99. 10.1021/cr60265a003 / Chemical Reviews / Electrical properties of solid oxide electrolytes by Etsell (1970)
  100. 10.1016/S0167-2738(00)00356-8 / Solid State Ionics / Scandia-zirconia electrolytes for intermediate temperature solid oxide fuel cell operation by Badwal (2000)
  101. 10.1016/S0167-2738(00)00706-2 / Solid State Ionics / Mechanical and electrical properties of Sc2O3-doped zirconia ceramics improved by postsintering with HIP by Hirano (2000)
  102. 10.1016/j.elecom.2006.01.011 / Electrochemistry Communications / Electrolysis studies based on ceria-based composites by Zhu (2006)
  103. 10.1016/j.jpowsour.2005.01.057 / Journal of Power Sources / Microstructure and electrical conductivity of Ni/YSZ and NiO/YSZ composites for high-temperature electrolysis prepared by mechanical alloying by Hong (2005)
  104. 10.1115/1.1895946 / Journal of Fuel Cell Science and Technology / Performance measurements of solid oxide electrolysis cells for hydrogen production by O'Brien (2005)
  105. 10.1016/j.jallcom.2006.01.131 / Journal of Alloys and Compounds / The effect of ball milling parameters and Ni concentration on a YSZ-coated Ni composite for a high temperature electrolysis cathode by Hong (2008)
  106. 10.1016/j.ijhydene.2011.03.130 / International Journal of Hydrogen Energy / Durable SOC stacks for production of hydrogen and synthesis gas by high temperature electrolysis by Ebbesen (2011)
  107. 10.1149/1.2177124 / Journal of the Electrochemical Society / Polarization behavior of SDC cathode with highly dispersed Ni catalysts for solid oxide electrolysis cells by Osada (2006)
  108. 10.1149/1.2710209 / Journal of the Electrochemical Society / Electrode performance in reversible solid oxide fuel cells by Marina (2007)
  109. 10.1039/b800163d / Journal of Materials Chemistry / (La0.75Sr0.25)095Mn0.5Cr0.5O3 as the cathode of solid oxide electrolysis cells for high temperature hydrogen production from steam by Yang (2008)
  110. 10.1016/j.jpowsour.2008.12.132 / Journal of Power Sources / Preparation of LSM-YSZ composite powder for anode of solid oxide electrolysis cell and its activation mechanism by Liang (2009)
  111. 10.1039/b718822f / Journal of Materials Chemistry / Highly efficient high temperature electrolysis by Hauch (2008)
  112. 10.1016/j.ijhydene.2011.10.015 / International Journal of Hydrogen Energy / Enhanced electrochemical performance and stability of (La, Sr)MnO3–(Gd, Ce)O2 oxygen electrodes of solid oxide electrolysis cells by palladium infiltration by Chen (2012)
  113. 10.1016/S0167-2738(99)00111-3 / Solid State Ions / A solid oxide fuel cell with a gadolinia-doped ceria anode: preparation and performance by Marina (1999)
  114. 10.1016/j.jpowsour.2009.08.003 / Journal of Power Sources / A new anode material for solid oxide electrolyter: the neodymium nickelate Nd2NiO4+γ by Chauveau (2010)
  115. 10.1016/j.ijhydene.2011.01.048 / International Journal of Hydrogen Energy / Development and operation of alternative oxygen electrode materials for hydrogen production by high temperature steam electrolysis by Chauveau (2011)
  116. 10.1016/j.ijhydene.2008.02.048 / International Journal of Hydrogen Energy / Technological development of hydrogen production by solid oxide electrolyzer cell (SOEC) by Ni (2008)
  117. 10.1016/j.jpowsour.2011.12.019 / Journal of Power Sources / Recent advances in high temperature electrolysis using solid oxide fuel cells: a review by Laguna-Bercero (2012)
  118. 10.1016/j.nucengdes.2004.08.029 / Nuclear Engineering and Design / R&D on hydrogen production by high-temperature electrolysis of steam by Hino (2004)
  119. 10.1016/j.jpowsour.2006.12.081 / Journal of Power Sources / Hydrogen production through steam electrolysis: model-based steady state performance of a cathode-supported intermediate temperature solid oxide electrolysis cell by Udagawa (2007)
  120. 10.1016/S0360-3199(02)00135-0 / International Journal of Hydrogen Energy / A natural gas-assisted steam electrolyzer for high-efficiency production of hydrogen by Joel (2003)
  121. 10.1016/j.ijhydene.2005.02.009 / International Journal of Hydrogen Energy / Efficiency of hydrogen production systems using alternative nuclear energy technologies by Yildiz (2006)
  122. 10.1016/j.ijhydene.2012.04.024 / International Journal of Hydrogen Energy / Efficiency evaluation of high-temperature steam electrolytic systems couple with different nuclear reactors by Zhang (2012)
  123. 10.1016/j.ijhydene.2005.07.001 / International Journal of Hydrogen Energy / Life cycle assessment of high temperature electrolysis for hydrogen production via nuclear energy by Utgikar (2006)
  124. 10.1016/0360-3199(80)90114-7 / International Journal of Hydrogen Energy / Hydrogen production by high temperature electrolysis of water vapour by Doenitz (1980)
  125. 10.1016/j.ijhydene.2007.08.005 / International Journal of Hydrogen Energy / Energy and energy analysis of hydrogen production by solid oxide steam electrolyzer plant by Ni (2007)
  126. 10.1016/j.ijhydene.2006.11.026 / International Journal of Hydrogen Energy / Can high temperature steam electrolysis function with geothermal heat? by Sigurvinsson (2007)
  127. 10.1038/279301a0 / Nature / Hydrogen production from coal, water and electrons by Coughlin (1979)
  128. 10.1007/BF00611276 / Journal of Applied Electrochemistry / Consideration of electrodes and electrolytes for electrochemical gasification of coal by anodic oxidation by Coughlin (1980)
  129. 10.1021/i260074a002 / Industrial & Engineering Chemistry Process Design and Development / Electrochemical gasification of coal-simultaneous production of hydrogen and carbon dioxide by a single reaction involving coal, water, and electrons by Coughlin (1980)
  130. 10.1016/0016-2361(95)00169-6 / Fuel / Effects of pressure, gas temperature and CO2 and O2 partial pressures on the conversion of coal-nitrogen to NO, N2O and NO2 by Aho (1997)
  131. 10.1016/S0016-2361(98)00130-6 / Fuel / Characteristics of nitrogen-containing aromatic compounds in coal tars during secondary pyrolysis by Yu (1999)
  132. 10.1016/S1006-1266(08)60024-3 / Journal of China University of Mining and Technology / Electrolytic reduction of Nantong coal and model compounds with oxygenic functional groups in an aqueous NaCl solution by Zhao (2008)
  133. 10.1016/j.coal.2012.09.001 / International Journal of Coal Geology / Characterization of chemical functional groups in macerals across different coal ranks via micro-FTIR spectroscopy by Chen (2012)
  134. 10.1016/j.jpowsour.2005.09.033 / Journal of Power Sources / Electrooxidation of coal slurries on different electrode materials by Patil (2006)
  135. 10.1016/j.electacta.2009.07.090 / Electrochimica Acta / Electrocatalytic oxidation of coal on Ti-supported metal oxides coupled with liquid catalysts for H2 production by Yin (2009)
  136. 10.1016/j.ijhydene.2011.02.017 / International Journal of Hydrogen Energy / Electrolysis of coal slurries to produce hydrogen gas: relationship between CO2 and H2 formation by Hesenov (2011)
  137. 10.1063/1.2432241 / Applied Physics Letters / Carbon-assisted water electrolysis: an energy-efficient process to produce pure hydrogen at room temperature by Seehra (2007)
  138. 10.1016/j.ijhydene.2009.06.023 / International Journal of Hydrogen Energy / Nancarbon boosts energy-efficient hydrogen production in carbon-assisted water electrolysis by Seehra (2009)
  139. 10.1016/S0360-3199(02)00135-0 / International Journal of Hydrogen Energy / A natural gas-assisted steam electrolyzer for high-efficiency production of hydrogen by Martinez-Frias (2003)
  140. 10.1016/j.cattod.2008.08.039 / Catalysis Today / An overview of hydrogen production technologies by Holladay (2009)
Dates
Type When
Created 11 years, 11 months ago (Sept. 25, 2013, 3:35 a.m.)
Deposited 1 year, 3 months ago (May 18, 2024, 12:18 a.m.)
Indexed 14 hours, 48 minutes ago (Aug. 30, 2025, 12:26 p.m.)
Issued 11 years, 7 months ago (Jan. 1, 2014)
Published 11 years, 7 months ago (Jan. 1, 2014)
Published Print 11 years, 7 months ago (Jan. 1, 2014)
Funders 0

None

@article{Wang_2014, title={The intensification technologies to water electrolysis for hydrogen production – A review}, volume={29}, ISSN={1364-0321}, url={http://dx.doi.org/10.1016/j.rser.2013.08.090}, DOI={10.1016/j.rser.2013.08.090}, journal={Renewable and Sustainable Energy Reviews}, publisher={Elsevier BV}, author={Wang, Mingyong and Wang, Zhi and Gong, Xuzhong and Guo, Zhancheng}, year={2014}, month=jan, pages={573–588} }