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High Performance Na-O(2) Batteries and Printed Microsupercapacitors Based on Water-Processable, Biomolecule-Assisted Anodic Graphene

[Image: see text] Integrated approaches that expedite the production and processing of graphene into useful structures and devices, particularly through simple and environmentally friendly strategies, are highly desirable in the efforts to implement this two-dimensional material in state-of-the-art...

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Autores principales: Munuera, Jose M., Paredes, Juan I., Enterría, Marina, Villar-Rodil, Silvia, Kelly, Adam G., Nalawade, Yashaswi, Coleman, Jonathan N., Rojo, Teófilo, Ortiz-Vitoriano, Nagore, Martínez-Alonso, Amelia, Tascón, Juan M. D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6961952/
https://www.ncbi.nlm.nih.gov/pubmed/31825208
http://dx.doi.org/10.1021/acsami.9b15509
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author Munuera, Jose M.
Paredes, Juan I.
Enterría, Marina
Villar-Rodil, Silvia
Kelly, Adam G.
Nalawade, Yashaswi
Coleman, Jonathan N.
Rojo, Teófilo
Ortiz-Vitoriano, Nagore
Martínez-Alonso, Amelia
Tascón, Juan M. D.
author_facet Munuera, Jose M.
Paredes, Juan I.
Enterría, Marina
Villar-Rodil, Silvia
Kelly, Adam G.
Nalawade, Yashaswi
Coleman, Jonathan N.
Rojo, Teófilo
Ortiz-Vitoriano, Nagore
Martínez-Alonso, Amelia
Tascón, Juan M. D.
author_sort Munuera, Jose M.
collection PubMed
description [Image: see text] Integrated approaches that expedite the production and processing of graphene into useful structures and devices, particularly through simple and environmentally friendly strategies, are highly desirable in the efforts to implement this two-dimensional material in state-of-the-art electrochemical energy storage technologies. Here, we introduce natural nucleotides (e.g., adenosine monophosphate) as bifunctional agents for the electrochemical exfoliation and dispersion of graphene nanosheets in water. Acting both as exfoliating electrolytes and colloidal stabilizers, these biomolecules facilitated access to aqueous graphene bio-inks that could be readily processed into aerogels and inkjet-printed interdigitated patterns. Na-O(2) batteries assembled with the graphene-derived aerogels as the cathode and a glyme-based electrolyte exhibited a full discharge capacity of ∼3.8 mAh cm(–2) at a current density of 0.2 mA cm(–2). Moreover, shallow cycling experiments (0.5 mAh cm(–2)) boasted a capacity retention of 94% after 50 cycles, which outperformed the cycle life of prior graphene-based cathodes for this type of battery. The positive effect of the nucleotide-adsorbed nanosheets on the battery performance is discussed and related to the presence of the phosphate group in these biomolecules. Microsupercapacitors made from the interdigitated graphene patterns as the electrodes also displayed a competitive performance, affording areal and volumetric energy densities of 0.03 μWh cm(–2) and 1.2 mWh cm(–3) at power densities of 0.003 mW cm(–2) and 0.1 W cm(–3), respectively. Taken together, by offering a green and straightforward route to different types of functional graphene-based materials, the present results are expected to ease the development of novel energy storage technologies that exploit the attractions of graphene.
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spelling pubmed-69619522020-01-16 High Performance Na-O(2) Batteries and Printed Microsupercapacitors Based on Water-Processable, Biomolecule-Assisted Anodic Graphene Munuera, Jose M. Paredes, Juan I. Enterría, Marina Villar-Rodil, Silvia Kelly, Adam G. Nalawade, Yashaswi Coleman, Jonathan N. Rojo, Teófilo Ortiz-Vitoriano, Nagore Martínez-Alonso, Amelia Tascón, Juan M. D. ACS Appl Mater Interfaces [Image: see text] Integrated approaches that expedite the production and processing of graphene into useful structures and devices, particularly through simple and environmentally friendly strategies, are highly desirable in the efforts to implement this two-dimensional material in state-of-the-art electrochemical energy storage technologies. Here, we introduce natural nucleotides (e.g., adenosine monophosphate) as bifunctional agents for the electrochemical exfoliation and dispersion of graphene nanosheets in water. Acting both as exfoliating electrolytes and colloidal stabilizers, these biomolecules facilitated access to aqueous graphene bio-inks that could be readily processed into aerogels and inkjet-printed interdigitated patterns. Na-O(2) batteries assembled with the graphene-derived aerogels as the cathode and a glyme-based electrolyte exhibited a full discharge capacity of ∼3.8 mAh cm(–2) at a current density of 0.2 mA cm(–2). Moreover, shallow cycling experiments (0.5 mAh cm(–2)) boasted a capacity retention of 94% after 50 cycles, which outperformed the cycle life of prior graphene-based cathodes for this type of battery. The positive effect of the nucleotide-adsorbed nanosheets on the battery performance is discussed and related to the presence of the phosphate group in these biomolecules. Microsupercapacitors made from the interdigitated graphene patterns as the electrodes also displayed a competitive performance, affording areal and volumetric energy densities of 0.03 μWh cm(–2) and 1.2 mWh cm(–3) at power densities of 0.003 mW cm(–2) and 0.1 W cm(–3), respectively. Taken together, by offering a green and straightforward route to different types of functional graphene-based materials, the present results are expected to ease the development of novel energy storage technologies that exploit the attractions of graphene. American Chemical Society 2019-12-11 2020-01-08 /pmc/articles/PMC6961952/ /pubmed/31825208 http://dx.doi.org/10.1021/acsami.9b15509 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Munuera, Jose M.
Paredes, Juan I.
Enterría, Marina
Villar-Rodil, Silvia
Kelly, Adam G.
Nalawade, Yashaswi
Coleman, Jonathan N.
Rojo, Teófilo
Ortiz-Vitoriano, Nagore
Martínez-Alonso, Amelia
Tascón, Juan M. D.
High Performance Na-O(2) Batteries and Printed Microsupercapacitors Based on Water-Processable, Biomolecule-Assisted Anodic Graphene
title High Performance Na-O(2) Batteries and Printed Microsupercapacitors Based on Water-Processable, Biomolecule-Assisted Anodic Graphene
title_full High Performance Na-O(2) Batteries and Printed Microsupercapacitors Based on Water-Processable, Biomolecule-Assisted Anodic Graphene
title_fullStr High Performance Na-O(2) Batteries and Printed Microsupercapacitors Based on Water-Processable, Biomolecule-Assisted Anodic Graphene
title_full_unstemmed High Performance Na-O(2) Batteries and Printed Microsupercapacitors Based on Water-Processable, Biomolecule-Assisted Anodic Graphene
title_short High Performance Na-O(2) Batteries and Printed Microsupercapacitors Based on Water-Processable, Biomolecule-Assisted Anodic Graphene
title_sort high performance na-o(2) batteries and printed microsupercapacitors based on water-processable, biomolecule-assisted anodic graphene
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6961952/
https://www.ncbi.nlm.nih.gov/pubmed/31825208
http://dx.doi.org/10.1021/acsami.9b15509
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