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Optimizing membrane thickness for vanadium redox flow batteries
Dongyang Chen
, Michael A. Hickner
, Ertan Agar
, E. Caglan Kumbur
Materials Science and Engineering
Materials Research Institute (MRI)
Institute of Energy and the Environment (IEE)
Research output
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Contribution to journal
›
Article
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peer-review
97
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Scopus citations
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Keyphrases
Battery Operation
16%
Battery Performance
33%
Cell Performance
33%
Cell Polarization
16%
Cell Resistance
16%
Charge-discharge Behavior
16%
Coulombic Efficiency
16%
Electrolyte
16%
Energy Efficiency
16%
Fluorinated Poly(arylene ether)s
83%
Intrinsic Properties
16%
Ion Exchange Capacity
33%
Material Constants
16%
Material Parameters
16%
Maximum Power Density
16%
Membrane Materials
16%
Membrane Resistance
16%
Membrane Thickness
100%
Negative Impact
16%
Ohmic Loss
16%
Operational Criteria
16%
Proton Conductivity
16%
Proton Exchange Membrane
33%
Sulfonate
83%
Thick Membrane
16%
Thin Membrane
16%
Vanadium Permeability
16%
Vanadium Redox Flow Battery
100%
Voltage Efficiency
16%
Engineering
Cell Performance
33%
Combined Effect
16%
Energy Conservation
16%
Energy Efficiency
16%
Intrinsic Property
16%
Ion-Exchange Capacity
33%
Material Constant
16%
Material Parameter
16%
Maximum Power Density
16%
Negative Impact
16%
Ohmic Loss
16%
Proton Conductivity
16%
Proton Exchange Membrane
33%
Thin Membrane
16%
Vanadium Redox Flow Battery
100%
Voltage Efficiency
16%
Material Science
Density
11%
Redox Flow Battery
100%
Vanadium
100%
Chemical Engineering
Ion Exchange
100%