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Process design
Hydrogen production
Biomass
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PEFC
PEM thickness
MPL
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278Energy efficient H2 production via NH3 thermolysis using Ni-coated hot filament
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ammonia thermolysis
hydrogen production
hot filament
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279$B6bB0?eAG2=J*$X$N?eAGN.DL$K$h$kG.6!5k$H?eAGJ|=P@)8f$N%7%_%e%l!<%7%g%s(B
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Magnesium hydride
Hydrogen storage
Heat transfer
P
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Carbon nanotube
Hydrogen production
alkaline water electrolysis
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Carbon Nanotube
Solid Oxide Fuel Cell
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Magnesium hydride
Hydrogen storage
Catalytic mechanism
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Photoelectrochemistry
Hydrogen Peroxide
Anode Reaction
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electrolysis
intermediate temperature
solid phosphate
O
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fuel cell catalyst
chemisorption
support effect
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Simulation of paper production
Life cycle assessment
Greenhouse gas
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Hetero interface
Scanning probe microscopy
Solid Oxide Fuel Cell
P
494Ni/GDC$B$*$h$S(BNi/YSZ$BG3NA6K$r;HMQ$7$?%+!<%\%s6u5$Fs
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solid oxide fuel cell
secondary battery
electrolysis
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526$B8GBN;@2=J*7?EE2r%;%k$rMQ$$$?%a%?%s$N;@2=E*%+%C%W%j%s%0H?1~(B
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Oxidative methane coupling
Ethane
Ethylene
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distributed generation
renewable energy
machine learning
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Solid oxide fuel cell
Carbon nanotube
oxide ion conductor
O
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Energy system
Solar cell
Simulation
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liposome
carbon nanotube
photocatalyst
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597Solar-light-driven Water Splitting for Hydrogen Evolution by A Novel TiO2 Based Photocatalyst
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Solar-light-driven P/Ag/Ag2O/Ag3PO4/TiO2 photocatalyst
Water splitting
H2 generation
P
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Direct formate fuel cell
Mathematical model
Fuel transport
P
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electroorganic synthesis
selectivity
acetaldehyde
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oxygen evolution reaction
iron-based electrocatalyst
alkaline water splitting
O
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solar cell
mono-crystalline Si film
PEDOT:PSS
P
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polymer electrolyte fuel cell
analysis method
dimensionless moduli
O
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polymer electrolyte fuel cells
pore-filling membrane
chemical durability
O
659$BEE2r
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Solid oxide fuel cell
Bilayer electrolyte
Transport property
O
692$B6bB0;@2=J*$rMQ$$$??eAG%(%M%k%.!2A(B
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Hydrogen storage
Metal oxides
Steam electrolysis
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polymer electrolyte fuel cell
oxygen reduction reaction
platinum-sputtered electrode
P
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Solid Oxide Fuel Cell
Kinetics modeling
Langmuir-Hinshelwood
O
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Cavitation Microbubbles
Continuous Flow Process
Polymer Electrolyte Fuel Cell
O
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Electrolysis
System design
LCA(Life cycle assessment)
O
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Direct formate solid alkaline fuel cell
Anion conducting membrane
Ether-free aromatic polymer
P
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Ammonia electrosynthesis
catalyst
proton conductor
P
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lithium ion battery
graphite
high temperature characteristics
P
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polymer electrolyte fuel cell
water management
operation conditions
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776Connected Pt-Co Catalysts Possessing Chemically Ordered Structures for Improved Oxygen Reduction Performances
(Tokyo Tech) ($B3X(B)$B!{(BLiao Qiancheng$B!&(B (KISTEC/Tokyo Tech) ($B@5(B)Kuroki Hidenori$B!&(B (Tokyo Tech/KISTEC) ($B@5(B)Tamaki Takanori$B!&(B ($B@5(B)Yamaguchi Takeo
Polymer electrolyte fuel cell
Carbon free
ORR electrocatalyst
P
798Thermopower Wave$B$K4p$E$$$?H/EE%G%P%$%9$K4X$9$k8&5f(B
($B5~Bg1!9)(B) ($B@5(B)$B:4Ln(B $B5*>4(B
thermopower wave
carbon nanotube
power generation
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(C) 2020 $B8x1W
Most recent update: 2020-09-26 15:59:01
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