A perspective on three sustainable hydrogen production technologies with a focus on technology readiness level, cost of production and life cycle environmental impacts
暂无分享,去创建一个
[1] W. Won,et al. Outlook of industrial-scale green hydrogen production via a hybrid system of alkaline water electrolysis and energy storage system based on seasonal solar radiation , 2022, Journal of Cleaner Production.
[2] M. Lo Faro,et al. In the path for creating Research-to-business new opportunities on green hydrogen between Italy and Brazil , 2022, International Journal of Hydrogen Energy.
[3] Dario R. Dekel,et al. Water electrolysis: from textbook knowledge to the latest scientific strategies and industrial developments , 2022, Chemical Society reviews.
[4] Junkyu Park,et al. Simplified sulfur-iodine cycle process to hydrogen blast furnace: Techno-economic and CO2 mitigation analysis , 2022, Journal of Cleaner Production.
[5] Sanggyu Kang,et al. Techno-economic analysis and Monte Carlo simulation of green hydrogen production technology through various water electrolysis technologies , 2022, Energy Conversion and Management.
[6] Yong He,et al. Life cycle assessment of three types of hydrogen production methods using solar energy , 2022, International Journal of Hydrogen Energy.
[7] John L. Zhou,et al. Techno-economic and environmental impact assessment of hydrogen production processes using bio-waste as renewable energy resource , 2022, Renewable and Sustainable Energy Reviews.
[8] I. Dincer,et al. An assessment study on various clean hydrogen production methods , 2022, Energy.
[9] Xian Zhang,et al. A levelized cost of hydrogen (LCOH) comparison of coal-to-hydrogen with CCS and water electrolysis powered by renewable energy in China , 2021, Energy.
[10] D. Schlund,et al. Analysing the impact of a renewable hydrogen quota on the European electricity and natural gas markets , 2021, Applied Energy.
[11] W. V. van Sark,et al. Analysis of photon-driven solar-to-hydrogen production methods in the Netherlands , 2021, Sustainable Energy Technologies and Assessments.
[12] S. Sadeghi,et al. A standalone solar thermochemical hydrogen plant with high-temperature molten salt: Thermodynamic and economic analyses and multi-objective optimization , 2021, Energy.
[13] M. L. Abundo,et al. A review of biohydrogen production technology for application towards hydrogen fuel cells , 2021 .
[14] S. Basu,et al. Hydrogen production technologies - Membrane based separation, storage and challenges. , 2021, Journal of environmental management.
[15] A. Nechache,et al. Alternative and innovative solid oxide electrolysis cell materials: A short review , 2021 .
[16] C. Breyer,et al. True Cost of Solar Hydrogen , 2021, Solar RRL.
[17] J. Mertens,et al. Assessing the environmental impacts of wind-based hydrogen production in the Netherlands using ex-ante LCA and scenarios analysis , 2021, Journal of Cleaner Production.
[18] A. Pugazhendhi,et al. Insights on biological hydrogen production routes and potential microorganisms for high hydrogen yield , 2021 .
[19] Yongfa Zhang,et al. Industrial hydrogen production technology and development status in China: a review , 2021, Clean Technologies and Environmental Policy.
[20] M. Mehrpooya,et al. Investigation of hydrogen production by sulfur‐iodine thermochemical water splitting cycle using renewable energy source , 2021, International Journal of Energy Research.
[21] C. Breyer,et al. Low-cost renewable electricity as the key driver of the global energy transition towards sustainability , 2021, Energy.
[22] L. Zhan,et al. Development and outlook of advanced nuclear energy technology , 2021 .
[23] S. Lenaerts,et al. Challenges in the use of hydrogen for maritime applications , 2021 .
[24] A. Khouya. Hydrogen production costs of a polymer electrolyte membrane electrolysis powered by a renewable hybrid system , 2021 .
[25] C. Zhong,et al. Hydrogen production from water electrolysis: role of catalysts , 2021, Nano Convergence.
[26] R. Bhosale. Solar hydrogen production via ZnO/Zn based thermochemical water splitting cycle: Effect of partial reduction of ZnO , 2021, International Journal of Hydrogen Energy.
[27] J. Tollefson. COVID curbed carbon emissions in 2020 — but not by much , 2021, Nature.
[28] Bing Zhang,et al. Progress and prospects of hydrogen production: Opportunities and challenges , 2021, Journal of Electronic Science and Technology.
[29] A. Forcina,et al. Analyzing the levelized cost of hydrogen in refueling stations with on-site hydrogen production via water electrolysis in the Italian scenario , 2020 .
[30] G. Kibria,et al. Comparative techno-economic and life-cycle assessment of power-to-methanol synthesis pathways , 2020, Applied Energy.
[31] Paul Chen,et al. Applications of microwave energy in gas production and tar removal during biomass gasification , 2020 .
[32] D. Bessarabov,et al. Comparative study of anion exchange membranes for low-cost water electrolysis , 2020, International Journal of Hydrogen Energy.
[33] R. Amal,et al. Techno-economic Analysis of Hydrogen Electrolysis from Off-Grid Stand-Alone Photovoltaics Incorporating Uncertainty Analysis , 2020, Cell Reports Physical Science.
[34] G. Kramer,et al. Renewable hydrogen production: A techno-economic comparison of photoelectrochemical cells and photovoltaic-electrolysis , 2020 .
[35] G. Naterer,et al. Review and evaluation of clean hydrogen production by the copper–chlorine thermochemical cycle , 2020 .
[36] I. Dincer,et al. Life cycle assessment study on nuclear based sustainable hydrogen production options , 2020 .
[37] F. Speck,et al. Fabrication of a Robust PEM Water Electrolyzer Based on Non-Noble Metal Cathode Catalyst: [Mo3 S13 ]2- Clusters Anchored to N-Doped Carbon Nanotubes. , 2020, Small.
[38] I. Dincer,et al. A study on the Fe–Cl thermochemical water splitting cycle for hydrogen production , 2020 .
[39] K. Suenaga,et al. Transition metal atom–doped monolayer MoS2 in a proton-exchange membrane electrolyzer , 2020, Materials Today Advances.
[40] K. Bouzek,et al. Green hydrogen from anion exchange membrane water electrolysis: a review of recent developments in critical materials and operating conditions , 2020, Sustainable Energy & Fuels.
[41] Binlin Dou,et al. Experimental study and development of an improved sulfur–iodine cycle integrated with HI electrolysis for hydrogen production , 2020 .
[42] J. Hartvigsen,et al. Comparative review of hydrogen production technologies for nuclear hybrid energy systems , 2020 .
[43] D. Darfilal,et al. SOLAR HYDROGEN PRODUCTION BY THERMOCHEMICAL REACTION: DEVELOPMENT OF A PACKED-BED REACTOR , 2020 .
[44] Daniel C W Tsang,et al. Biorenewable hydrogen production through biomass gasification: A review and future prospects. , 2020, Environmental research.
[45] G. Shafiullah,et al. Hydrogen production for energy: An overview , 2020 .
[46] I. Dincer,et al. A review and comparative evaluation of thermochemical water splitting cycles for hydrogen production , 2020 .
[47] T. Tomo,et al. Determination of the potential of cyanobacterial strains for hydrogen production , 2020 .
[48] S. Shiva Kumar,et al. Hydrogen production by PEM water electrolysis – A review , 2019 .
[49] Thomas Holm,et al. Grid-connected hydrogen production via large-scale water electrolysis , 2019, Energy Conversion and Management.
[50] C. Sattler,et al. Solar fuels production: Two-step thermochemical cycles with cerium-based oxides , 2019, Progress in Energy and Combustion Science.
[51] Y. Shastri,et al. Catalytic reactive flash volatilisation of microalgae to produce hydrogen or methane-rich syngas , 2019, Applied Catalysis B: Environmental.
[52] Kin Wai Cheah,et al. An overview of biomass thermochemical conversion technologies in Malaysia. , 2019, The Science of the total environment.
[53] D. Ding,et al. Advancement of Proton-Conducting Solid Oxide Fuel Cells and Solid Oxide Electrolysis Cells at Idaho National Laboratory (INL) , 2019, ECS Transactions.
[54] S. Abanades. Metal Oxides Applied to Thermochemical Water-Splitting for Hydrogen Production Using Concentrated Solar Energy , 2019, ChemEngineering.
[55] H. Ozcan,et al. Comprehensive review on the techno-economics of sustainable large-scale clean hydrogen production , 2019, Journal of Cleaner Production.
[56] A. Villagra,et al. An analysis of PEM water electrolysis cells operating at elevated current densities , 2019, International Journal of Hydrogen Energy.
[57] H. Akilli,et al. Supercritical water gasification of wastewater sludge for hydrogen production , 2019, International Journal of Hydrogen Energy.
[58] L. Singh,et al. Outlook of fermentative hydrogen production techniques: An overview of dark, photo and integrated dark-photo fermentative approach to biomass , 2019, Energy Strategy Reviews.
[59] A. Dalai,et al. Supercritical water gasification of biomass: a state-of-the-art review of process parameters, reaction mechanisms and catalysis , 2019, Sustainable Energy & Fuels.
[60] Stefan Reichelstein,et al. Economics of converting renewable power to hydrogen , 2019, Nature Energy.
[61] A. Dalai,et al. Hydrothermal catalytic processing of waste cooking oil for hydrogen-rich syngas production , 2019, Chemical Engineering Science.
[62] Joris Proost,et al. State-of-the art CAPEX data for water electrolysers, and their impact on renewable hydrogen price settings , 2019, International Journal of Hydrogen Energy.
[63] D. Ferrero,et al. Thermodynamic assessment of non-catalytic Ceria for syngas production by methane reduction and CO2 + H2O oxidation , 2019, Materials for Renewable and Sustainable Energy.
[64] P. Balcombe,et al. Levelized cost of CO2 mitigation from hydrogen production routes , 2019, Energy & Environmental Science.
[65] S. Badwal,et al. A comprehensive review of carbon and hydrocarbon assisted water electrolysis for hydrogen production , 2018, Applied Energy.
[66] Manuel Romero,et al. Solar-Driven Thermochemical Water-Splitting by Cerium Oxide: Determination of Operational Conditions in a Directly Irradiated Fixed Bed Reactor , 2018, Energies.
[67] I. Dincer,et al. Modeling and performance optimization of a solid oxide electrolysis system for hydrogen production , 2018, Applied Energy.
[68] W. Chueh,et al. The use of poly-cation oxides to lower the temperature of two-step thermochemical water splitting , 2018 .
[69] Monforti Ferrario Andrea,et al. Techno-economic analysis of in-situ production by electrolysis, biomass gasification and delivery systems for Hydrogen Refuelling Stations: Rome case study , 2018, Energy Procedia.
[70] Karolina Kucharska,et al. Hydrogen production from biomass using dark fermentation , 2018, Renewable and Sustainable Energy Reviews.
[71] Zhengang Liu,et al. Hydrochar supported bimetallic Ni–Fe nanocatalysts with tailored composition, size and shape for improved biomass steam reforming performance , 2018 .
[72] M. Kaltschmitt,et al. Hydrogen supply chains for mobility : environmental and economic assessment , 2018 .
[73] Yaser Khojasteh Salkuyeh,et al. Techno-economic analysis and life cycle assessment of hydrogen production from different biomass gasification processes , 2018 .
[74] G. Peltier,et al. CHAPTER 8:Photosynthetic Electron Transfer Pathways During Hydrogen Photoproduction in Green Algae: Mechanisms and Limitations , 2018 .
[75] V. Zare,et al. Hydrogen production from biomass gasification; a theoretical comparison of using different gasification agents , 2018 .
[76] J. Damasceno,et al. Hydrogen production by a low-cost electrolyzer developed through the combination of alkaline water electrolysis and solar energy use , 2018 .
[77] Hongmei Yu,et al. Water electrolysis based on renewable energy for hydrogen production , 2018 .
[78] Darwin Arifin,et al. Kinetics and mechanism of solar-thermochemical H2 and CO production by oxidation of reduced CeO2 , 2018 .
[79] E. G. Gueguim Kana,et al. Impact of medium pH regulation on biohydrogen production in dark fermentation process using suspended and immobilized microbial cells , 2018 .
[80] A. Sanyal,et al. Role of operating conditions on cross contamination of products of the Bunsen reaction in iodine-sulfur process for production of hydrogen , 2017 .
[81] Shicheng Zhang,et al. A review of biochar-based catalysts for chemical synthesis, biofuel production, and pollution control. , 2017, Bioresource technology.
[82] F. Bux,et al. Light enhancement strategies improve microalgal biomass productivity , 2017 .
[83] A. Hawkes,et al. Future cost and performance of water electrolysis: An expert elicitation study , 2017 .
[84] Christian Sattler,et al. Solar hydrogen production via sulphur based thermochemical water-splitting , 2017 .
[85] E. Catizzone,et al. Municipal waste leachate conversion via catalytic supercritical water gasification process , 2017 .
[86] M. Mikou,et al. Effect of operating parameters on hydrogen production by electrolysis of water , 2017 .
[87] J. Ordonez,et al. Enhanced biohydrogen production from microalgae by diesel engine hazardous emissions fixation , 2017 .
[88] Yaser Khojasteh Salkuyeh,et al. Techno-economic analysis and life cycle assessment of hydrogen production from natural gas using current and emerging technologies , 2017 .
[89] Xing Huang,et al. Heat transfer analysis of thermal disassociation of ZnO for solar hydrogen production , 2017 .
[90] Ming Zhao,et al. Progress in biofuel production from gasification , 2017 .
[91] Ibrahim Dincer,et al. Performance analysis of a supercritical water-cooled nuclear reactor integrated with a combined cycle, a Cu-Cl thermochemical cycle and a hydrogen compression system , 2017 .
[92] C. Rao,et al. Solar thermochemical splitting of water to generate hydrogen , 2017, Proceedings of the National Academy of Sciences.
[93] A. Steinfeld,et al. Solar thermochemical splitting of CO2 into separate streams of CO and O2 with high selectivity, stability, conversion, and efficiency , 2017 .
[94] David M. Wall,et al. Use of surplus wind electricity in Ireland to produce compressed renewable gaseous transport fuel through biological power to gas systems , 2017 .
[95] Mohamed Sellami,et al. Electrolytes behavior during hydrogen production by solar energy , 2017 .
[96] Patrick C. Hallenbeck,et al. Hydrogen production by co-cultures of Clostridium butyricum and Rhodospeudomonas palustris: Optimization of yield using response surface methodology , 2017 .
[97] Anand Kumar,et al. Thermodynamic analysis of solar driven SnO2/SnO based thermochemical water splitting cycle , 2017 .
[98] Abdullah Al-Sharafi,et al. Techno-economic analysis and optimization of solar and wind energy systems for power generation and hydrogen production in Saudi Arabia , 2017 .
[99] Jo‐Shu Chang,et al. Recent insights into biohydrogen production by microalgae - From biophotolysis to dark fermentation. , 2017, Bioresource technology.
[100] G. Scheffknecht,et al. Steam gasification of wood pellets, sewage sludge and manure: Gasification performance and concentration of impurities , 2017 .
[101] Yong Feng Li,et al. Techno-economic analysis of a novel bioprocess combining solid state fermentation and dark fermentation for H2 production from food waste , 2016 .
[102] Maurizio Carlini,et al. Performance evaluation at different process parameters of an innovative prototype of biomass gasification system aimed to hydrogen production , 2016 .
[103] Wei Han,et al. Biohydrogen production from waste bread in a continuous stirred tank reactor: A techno-economic analysis. , 2016, Bioresource technology.
[104] A. Weimer,et al. System efficiency for two-step metal oxide solar thermochemical hydrogen production – Part 1: Thermodynamic model and impact of oxidation kinetics , 2016 .
[105] A. Weimer,et al. System efficiency for two-step metal oxide solar thermochemical hydrogen production – Part 3: Various methods for achieving low oxygen partial pressures in the reduction reaction , 2016 .
[106] Hamedani Rajabi Sara,et al. Techno-economic Analysis of Hydrogen Production Using Biomass Gasification -A Small Scale Power Plant Study , 2016 .
[107] C. Dunnill,et al. Zero gap alkaline electrolysis cell design for renewable energy storage as hydrogen gas , 2016 .
[108] Vineet Singh Sikarwar,et al. An overview of advances in biomass gasification , 2016 .
[109] Jane H. Davidson,et al. Demonstration of a Solar Reactor for Carbon Dioxide Splitting via the Isothermal Ceria Redox Cycle and Practical Implications , 2016 .
[110] Jun Fang,et al. Techno-economic analysis of dark fermentative hydrogen production from molasses in a continuous mixed immobilized sludge reactor , 2016 .
[111] Arturo Gomez,et al. Review of gasification fundamentals and new findings: Reactors, feedstock, and kinetic studies , 2016 .
[112] Matthew R. Shaner,et al. A comparative technoeconomic analysis of renewable hydrogen production using solar energy , 2016 .
[113] M. Newborough,et al. Using surplus nuclear power for hydrogen mobility and power-to-gas in France , 2016 .
[114] S. E. Hosseini,et al. Hydrogen production from renewable and sustainable energy resources: Promising green energy carrier for clean development , 2016 .
[115] G. Naterer,et al. Process integration of material flows of copper chlorides in the thermochemical Cu–Cl cycle , 2016 .
[116] M. Ni,et al. Effect of Operating Parameters and Moisture Content on Municipal Solid Waste Pyrolysis and Gasification , 2016 .
[117] Anton Meier,et al. Pilot-scale solar reactor operation and characterization for fuel production via the Zn/ZnO thermochemical cycle , 2016 .
[118] Jun Fang,et al. Techno-economic evaluation of a combined bioprocess for fermentative hydrogen production from food waste. , 2016, Bioresource technology.
[119] K. A. Subramanian,et al. Sustainable development of road transportation sector using hydrogen energy system , 2015 .
[120] A. Züttel,et al. Composite membranes for alkaline electrolysis based on polysulfone and mineral fillers , 2015 .
[121] I. Dincer,et al. Review and evaluation of hydrogen production methods for better sustainability , 2015 .
[122] H. Ho,et al. Towards a smart energy network: The roles of fuel/electrolysis cells and technological perspectives , 2015 .
[123] M. Ghirardi. Implementation of photobiological H2 production: the O2 sensitivity of hydrogenases , 2015, Photosynthesis Research.
[124] Ibrahim Dincer,et al. Progress in thermochemical hydrogen production with the copper–chlorine cycle , 2015 .
[125] Piet N.L. Lens,et al. A review on dark fermentative biohydrogen production from organic biomass: Process parameters and use of by-products , 2015 .
[126] Dong-Woo Lee,et al. Biohydrogen Production: Strategies to Improve Process Efficiency through Microbial Routes , 2015, International journal of molecular sciences.
[127] Lakhveer Singh,et al. Methods for enhancing bio-hydrogen production from biological process: A review , 2015 .
[128] Ramchandra Bhandari,et al. Life cycle assessment of hydrogen production via electrolysis – a review , 2014 .
[129] Kasai Shigeo,et al. Hydrogen electrical energy storage by high-temperature steam electrolysis for next-millennium energy security , 2014 .
[130] Yafei Shen. Carbon dioxide bio-fixation and wastewater treatment via algae photochemical synthesis for biofuels production , 2014 .
[131] Markus Lehner,et al. Power-to-Gas: Technology and Business Models , 2014 .
[132] S. Abanades,et al. Investigation of Perovskite Structures as Oxygen-Exchange Redox Materials for Hydrogen Production from Thermochemical Two-Step Water-Splitting Cycles , 2014 .
[133] P. Parthasarathy,et al. Hydrogen production from steam gasification of biomass: Influence of process parameters on hydrogen yield – A review , 2014 .
[134] Mohd Azlan Hussain,et al. Development of biohydrogen production by photobiological, fermentation and electrochemical processes: A review , 2014 .
[135] A. Brisse,et al. A Review and Comprehensive Analysis of Degradation Mechanisms of Solid Oxide Electrolysis Cells , 2013 .
[136] Ping Zhang,et al. Study on Apparent Kinetics of the Reaction between Sulfuric and Hydriodic Acids in the Iodine–Sulfur Process , 2013 .
[137] Rashmi Chaubey,et al. A review on development of industrial processes and emerging techniques for production of hydrogen from renewable and sustainable sources , 2013 .
[138] D. Stolten,et al. A comprehensive review on PEM water electrolysis , 2013 .
[139] Ibrahim Dincer,et al. Efficiency comparison of various design schemes for copper–chlorine (Cu–Cl) hydrogen production processes using Aspen Plus software , 2012 .
[140] P. Chang,et al. Techno-economic evaluation of biohydrogen production from wastewater and agricultural waste , 2012 .
[141] I. Dincer,et al. Life cycle assessment of hydrogen production via thermochemical water splitting using multi-step Cu–Cl cycles , 2012 .
[142] Nasri Sulaiman,et al. Influencing factors of water electrolysis electrical efficiency , 2012 .
[143] Aldo Steinfeld,et al. Thermodynamic Analysis of Cerium-Based Oxides for Solar Thermochemical Fuel Production , 2012 .
[144] Ibrahim Dincer,et al. A comparative life cycle analysis of hydrogen production via thermochemical water splitting using a Cu–Cl cycle , 2011 .
[145] H. Argun,et al. Bio-hydrogen production by different operational modes of dark and photo-fermentation: An overview , 2011 .
[146] Anjana Pandey,et al. An evaluative report and challenges for fermentative biohydrogen production , 2011 .
[147] W. Chueh,et al. High-Flux Solar-Driven Thermochemical Dissociation of CO2 and H2O Using Nonstoichiometric Ceria , 2010, Science.
[148] Ibrahim Dincer,et al. Canada’s program on nuclear hydrogen production and the thermochemical Cu–Cl cycle , 2010 .
[149] Dongke Zhang,et al. Recent progress in alkaline water electrolysis for hydrogen production and applications , 2010 .
[150] G. Flamant,et al. Kinetic investigation of hydrogen generation from hydrolysis of SnO and Zn solar nanopowders , 2009 .
[151] A. Hepbasli,et al. Thermodynamic assessment of geothermal energy use in hydrogen production , 2009 .
[152] J. Dufour,et al. Life cycle assessment of processes for hydrogen production. Environmental feasibility and reduction of greenhouse gases emissions , 2009 .
[153] S. Jensen,et al. Highly efficient high temperature electrolysis , 2008 .
[154] Hee Cheon No,et al. An optimal operating window for the Bunsen process in the I–S thermochemical cycle , 2008 .
[155] A. Steinfeld,et al. Band-approximated radiative heat transfer analysis of a solar chemical reactor for the thermal dissociation of zinc oxide , 2007 .
[156] Gilles Flamant,et al. Thermochemical hydrogen production from a two-step solar-driven water-splitting cycle based on cerium oxides , 2006 .
[157] V. Utgikar,et al. Life cycle assessment of high temperature electrolysis for hydrogen production via nuclear energy , 2006 .
[158] A. Steinfeld. Solar hydrogen production via a two-step water-splitting thermochemical cycle based on Zn/ZnO redox reactions , 2002 .
[159] Frank Tietz,et al. Nickel coarsening in annealed Ni/8YSZ anode substrates for solid oxide fuel cells , 2000 .
[160] M. Sakurai. Experimental Study on Side Reaction Occurrence Condition in the Iodine-Sulfur Thermochemical Hydrogen Production Process , 2000 .
[161] Niklas Gerloff. Economic analysis of hydrogen production in Germany with a focus on green hydrogen, considering all three major water electrolysis technologies , 2023, Sustainable Energy & Fuels.
[162] M. Mazzotti,et al. Large-scale hydrogen production via water electrolysis—a techno-economic and environmental assessment , 2022, Energy & Environmental Science.
[163] S. T. Munkejord,et al. Perspective on the hydrogen economy as a pathway to reach net-zero CO2 emissions in Europe , 2022, Energy & Environmental Science.
[164] I. Dincer,et al. Comparative assessment of renewable energy-based hydrogen production methods , 2021 .
[165] N. Burton,et al. Increasing the efficiency of hydrogen production from solar powered water electrolysis , 2021 .
[166] Tero Tynjälä,et al. Cost benefits of optimizing hydrogen storage and methanation capacities for Power-to-Gas plants in dynamic operation , 2020 .
[167] G. Guan,et al. Small-scale biomass gasification systems for power generation (<200 kW class): A review , 2020 .
[168] Lei Wang,et al. Solar fuels production via two-step thermochemical cycle based on Fe3O4/Fe with methane reduction , 2019, Solar Energy.
[169] Dmitri Bessarabov,et al. Low cost hydrogen production by anion exchange membrane electrolysis: A review , 2018 .
[170] Zhang Ping,et al. Progress of nuclear hydrogen production through the iodine–sulfur process in China , 2018 .
[171] Amit Singhania. Catalytic Decomposition of Hydrogen-Iodide Over Nanocrystalline Ceria Promoted by Transition Metal Oxides for Hydrogen Production in Sulfur–Iodine Thermo-Chemical Cycle , 2017, Catalysis Letters.
[172] Andreas Poullikkas,et al. A comparative overview of hydrogen production processes , 2017 .
[173] Kun-Lin Yang,et al. Biological and fermentative production of hydrogen , 2016 .
[174] I. Dincer. Green methods for hydrogen production , 2012 .
[175] Stephen J. Skinner,et al. Functional materials for sustainable energy applications , 2012 .
[176] Robert Palumbo,et al. DESIGN ASPECTS OF SOLAR THERMOCHEMICAL ENGINEERING—A CASE STUDY: TWO-STEP WATER-SPLITTING CYCLE USING THE Fe3O4/FeO REDOX SYSTEM , 1999 .