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A plant-like battery: a biodegradable power source ecodesigned for precision agriculture

The natural environment has always been a source of inspiration for the research community. Nature has evolved over thousands of years to create the most complex living systems, with the ability to leverage inner and outside energetic interactions in the most efficient way. This work presents a flow...

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Autores principales: Navarro-Segarra, Marina, Tortosa, Carles, Ruiz-Díez, Carlos, Desmaële, Denis, Gea, Teresa, Barrena, Raquel, Sabaté, Neus, Esquivel, Juan Pablo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9277620/
https://www.ncbi.nlm.nih.gov/pubmed/35923415
http://dx.doi.org/10.1039/d2ee00597b
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author Navarro-Segarra, Marina
Tortosa, Carles
Ruiz-Díez, Carlos
Desmaële, Denis
Gea, Teresa
Barrena, Raquel
Sabaté, Neus
Esquivel, Juan Pablo
author_facet Navarro-Segarra, Marina
Tortosa, Carles
Ruiz-Díez, Carlos
Desmaële, Denis
Gea, Teresa
Barrena, Raquel
Sabaté, Neus
Esquivel, Juan Pablo
author_sort Navarro-Segarra, Marina
collection PubMed
description The natural environment has always been a source of inspiration for the research community. Nature has evolved over thousands of years to create the most complex living systems, with the ability to leverage inner and outside energetic interactions in the most efficient way. This work presents a flow battery profoundly inspired by nature, which mimics the fluid transport in plants to generate electric power. The battery was ecodesigned to meet a life cycle for precision agriculture (PA) applications; from raw material selection to disposability considerations, the battery is conceived to minimize its environmental impact while meeting PA power requirements. The paper-based fluidic system relies on evaporation as the main pumping force to pull the reactants through a pair of porous carbon electrodes where the electrochemical reaction takes place. This naturally occurring transpiration effect enables to significantly expand the operational lifespan of the battery, overcoming the time-limitation of current capillary-based power sources. Most relevant parameters affecting the battery performance, such as evaporation flow and redox species degradation, are thoroughly studied to carry out device optimization. Flow rates and power outputs comparable to those of capillary-based power sources are achieved. The prototype practicality has been demonstrated by powering a wireless plant-caring device. Standardized biodegradability and phytotoxicity assessments show that the battery is harmless to the environment at the end of its operational lifetime. Placing sustainability as the main driver leads to the generation of a disruptive battery concept that aims to address societal needs within the planetary environmental boundaries.
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spelling pubmed-92776202022-08-01 A plant-like battery: a biodegradable power source ecodesigned for precision agriculture Navarro-Segarra, Marina Tortosa, Carles Ruiz-Díez, Carlos Desmaële, Denis Gea, Teresa Barrena, Raquel Sabaté, Neus Esquivel, Juan Pablo Energy Environ Sci Chemistry The natural environment has always been a source of inspiration for the research community. Nature has evolved over thousands of years to create the most complex living systems, with the ability to leverage inner and outside energetic interactions in the most efficient way. This work presents a flow battery profoundly inspired by nature, which mimics the fluid transport in plants to generate electric power. The battery was ecodesigned to meet a life cycle for precision agriculture (PA) applications; from raw material selection to disposability considerations, the battery is conceived to minimize its environmental impact while meeting PA power requirements. The paper-based fluidic system relies on evaporation as the main pumping force to pull the reactants through a pair of porous carbon electrodes where the electrochemical reaction takes place. This naturally occurring transpiration effect enables to significantly expand the operational lifespan of the battery, overcoming the time-limitation of current capillary-based power sources. Most relevant parameters affecting the battery performance, such as evaporation flow and redox species degradation, are thoroughly studied to carry out device optimization. Flow rates and power outputs comparable to those of capillary-based power sources are achieved. The prototype practicality has been demonstrated by powering a wireless plant-caring device. Standardized biodegradability and phytotoxicity assessments show that the battery is harmless to the environment at the end of its operational lifetime. Placing sustainability as the main driver leads to the generation of a disruptive battery concept that aims to address societal needs within the planetary environmental boundaries. The Royal Society of Chemistry 2022-05-30 /pmc/articles/PMC9277620/ /pubmed/35923415 http://dx.doi.org/10.1039/d2ee00597b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Navarro-Segarra, Marina
Tortosa, Carles
Ruiz-Díez, Carlos
Desmaële, Denis
Gea, Teresa
Barrena, Raquel
Sabaté, Neus
Esquivel, Juan Pablo
A plant-like battery: a biodegradable power source ecodesigned for precision agriculture
title A plant-like battery: a biodegradable power source ecodesigned for precision agriculture
title_full A plant-like battery: a biodegradable power source ecodesigned for precision agriculture
title_fullStr A plant-like battery: a biodegradable power source ecodesigned for precision agriculture
title_full_unstemmed A plant-like battery: a biodegradable power source ecodesigned for precision agriculture
title_short A plant-like battery: a biodegradable power source ecodesigned for precision agriculture
title_sort plant-like battery: a biodegradable power source ecodesigned for precision agriculture
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9277620/
https://www.ncbi.nlm.nih.gov/pubmed/35923415
http://dx.doi.org/10.1039/d2ee00597b
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