Adaptation of Cu(In, Ga)Se2 photovoltaics for full unbiased photocharge of integrated solar vanadium redox flow batteries

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Autores principales: Murcia-Lopez, Sebastián, Chakraborty, Monalisa, Carretero, Nina M., Flox, Cristina, Morante, Joan Ramón, Andreu, Teresa
Formato: Recurso digital
Lenguaje:inglés
Publicado: Zenodo 2019
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author Murcia-Lopez, Sebastián
Chakraborty, Monalisa
Carretero, Nina M.
Flox, Cristina
Morante, Joan Ramón
Andreu, Teresa
author_facet Murcia-Lopez, Sebastián
Chakraborty, Monalisa
Carretero, Nina M.
Flox, Cristina
Morante, Joan Ramón
Andreu, Teresa
contents The integration of photovoltaics and vanadium redox flow batteries (VRFBs) is a promising alternative for the direct conversion and storage of solar energy in a single device, considering their inherent higher energy density versus other redox pairs. However, this integration is not seamless unless the photovoltaic system is customized to the voltage needs of the battery, which unlike artificial photosynthesis, continuously increase with the state-of-charge. We have developed an integrated solar VRFB with adapted low-cost Cu(In, Ga)Se-2 modules of 3 and 4 series-connected cells (solar efficiency of mini-solar module 8.1%), and considering the voltage requirements (1.3-1.6 V), we have evaluated the influence of the photovoltaic operation region on the final efficiency of the solar VRFB. Full unbiased photocharge under 1 Sun illumination has been achieved resulting in high energy (77%), solar-to-charge (7.5%) and overall round trip energy conversion efficiencies (5.0%) exceeding the values reported in the literature for other solar VRFBs, thus demonstrating the feasibility and intrinsic potential of adapting low-cost commercial photovoltaics to such energy storage systems.
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language eng
publishDate 2019
publisher Zenodo
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spellingShingle Adaptation of Cu(In, Ga)Se2 photovoltaics for full unbiased photocharge of integrated solar vanadium redox flow batteries
Murcia-Lopez, Sebastián
Chakraborty, Monalisa
Carretero, Nina M.
Flox, Cristina
Morante, Joan Ramón
Andreu, Teresa
Artificial photosynthesis
Charging (batteries)
Costs
Flow batteries
Photovoltaic cells
Solar cells
Solar energy
Vanadium
Direct conversion
Energy storage systems
Higher energy density
Intrinsic potential
Photovoltaic operation
Photovoltaic systems
Vanadium redox flow batteries
Voltage requirement
copper
energy storage
fuel cell
photovoltaic system
redox conditions
solar power
vanadium
Solar power generation
The integration of photovoltaics and vanadium redox flow batteries (VRFBs) is a promising alternative for the direct conversion and storage of solar energy in a single device, considering their inherent higher energy density versus other redox pairs. However, this integration is not seamless unless the photovoltaic system is customized to the voltage needs of the battery, which unlike artificial photosynthesis, continuously increase with the state-of-charge. We have developed an integrated solar VRFB with adapted low-cost Cu(In, Ga)Se-2 modules of 3 and 4 series-connected cells (solar efficiency of mini-solar module 8.1%), and considering the voltage requirements (1.3-1.6 V), we have evaluated the influence of the photovoltaic operation region on the final efficiency of the solar VRFB. Full unbiased photocharge under 1 Sun illumination has been achieved resulting in high energy (77%), solar-to-charge (7.5%) and overall round trip energy conversion efficiencies (5.0%) exceeding the values reported in the literature for other solar VRFBs, thus demonstrating the feasibility and intrinsic potential of adapting low-cost commercial photovoltaics to such energy storage systems.
title Adaptation of Cu(In, Ga)Se2 photovoltaics for full unbiased photocharge of integrated solar vanadium redox flow batteries
topic Artificial photosynthesis
Charging (batteries)
Costs
Flow batteries
Photovoltaic cells
Solar cells
Solar energy
Vanadium
Direct conversion
Energy storage systems
Higher energy density
Intrinsic potential
Photovoltaic operation
Photovoltaic systems
Vanadium redox flow batteries
Voltage requirement
copper
energy storage
fuel cell
photovoltaic system
redox conditions
solar power
vanadium
Solar power generation
url https://doi.org/10.1039/c9se00949c