Mesoporous Carbons from Polysaccharides and Their Use in Li-O<sub>2</sub> Batteries

Previous studies have demonstrated that the mesoporosity of carbon material obtained by the Starbon<sup>®</sup> process from starch-formed by amylose and amylopectin can be tuned by controlling this ratio (the higher the amylose, the higher the mesoporosity). This study shows that starch...

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Main Authors: María Uriburu-Gray, Aránzazu Pinar-Serrano, Gokhan Cavus, Etienne Knipping, Christophe Aucher, Aleix Conesa-Cabeza, Amro Satti, David Amantia, Sandra Martínez-Crespiera
Format: Article
Language:English
Published: MDPI AG 2020-10-01
Series:Nanomaterials
Subjects:
Online Access:https://www.mdpi.com/2079-4991/10/10/2036
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spelling doaj-f4af230d689c4859a7d99a1939211d8c2020-11-25T03:53:25ZengMDPI AGNanomaterials2079-49912020-10-01102036203610.3390/nano10102036Mesoporous Carbons from Polysaccharides and Their Use in Li-O<sub>2</sub> BatteriesMaría Uriburu-Gray0Aránzazu Pinar-Serrano1Gokhan Cavus2Etienne Knipping3Christophe Aucher4Aleix Conesa-Cabeza5Amro Satti6David Amantia7Sandra Martínez-Crespiera8LEITAT Technological Centre, Applied Chemistry and Materials Department, C/Pallars, 185, 08005 Barcelona, SpainLEITAT Technological Centre, Applied Chemistry and Materials Department, C/Pallars, 185, 08005 Barcelona, SpainLEITAT Technological Centre, Energy and Engineering Department, C/de la Innovació, 2, 08225 Terrassa (Barcelona), SpainLEITAT Technological Centre, Energy and Engineering Department, C/de la Innovació, 2, 08225 Terrassa (Barcelona), SpainLEITAT Technological Centre, Energy and Engineering Department, C/de la Innovació, 2, 08225 Terrassa (Barcelona), SpainLEITAT Technological Centre, Scientific and Technical S-ervices Division, C/de la Innovació, 2, 08225 Terrassa (Barcelona), SpainLEITAT Technological Centre, Applied Chemistry and Materials Department, C/Pallars, 185, 08005 Barcelona, SpainLEITAT Technological Centre, Applied Chemistry and Materials Department, C/Pallars, 185, 08005 Barcelona, SpainLEITAT Technological Centre, Applied Chemistry and Materials Department, C/Pallars, 185, 08005 Barcelona, SpainPrevious studies have demonstrated that the mesoporosity of carbon material obtained by the Starbon<sup>®</sup> process from starch-formed by amylose and amylopectin can be tuned by controlling this ratio (the higher the amylose, the higher the mesoporosity). This study shows that starch type can also be an important parameter to control this mesoporosity. Carbons with controlled mesoporosity (V<sub>meso</sub> from 0.1–0.7 cm<sup>3</sup>/g) have been produced by the pre-mixing of different starches using an ionic liquid (IL) followed by a modified Starbon<sup>®</sup> process. The results show that the use of starch from corn and maize (commercially available Hylon VII with maize, respectively) is the better combination to increase the mesopore volume. Moreover, “low-cost” mesoporous carbons have been obtained by the direct carbonization of the pre-treated starch mixtures with the IL. In all cases, the IL can be recovered and reused, as demonstrated by its recycling up to three times. Furthermore, and as a comparison, chitosan has been also used as a precursor to obtain N-doped mesoporous carbons (5.5 wt% N) with moderate mesoporosity (V<sub>meso</sub> = 0.43 cm<sup>3</sup>/g). The different mesoporous carbons have been tested as cathode components in Li-O<sub>2</sub> batteries and it is shown that a higher carbon mesoporosity, produced from starch precursor, or the N-doping, produced from chitosan precursor, increase the final battery cell performance (specific capacity and cycling).https://www.mdpi.com/2079-4991/10/10/2036starchchitosanpolysaccharideamyloseionic liquidcarbon
collection DOAJ
language English
format Article
sources DOAJ
author María Uriburu-Gray
Aránzazu Pinar-Serrano
Gokhan Cavus
Etienne Knipping
Christophe Aucher
Aleix Conesa-Cabeza
Amro Satti
David Amantia
Sandra Martínez-Crespiera
spellingShingle María Uriburu-Gray
Aránzazu Pinar-Serrano
Gokhan Cavus
Etienne Knipping
Christophe Aucher
Aleix Conesa-Cabeza
Amro Satti
David Amantia
Sandra Martínez-Crespiera
Mesoporous Carbons from Polysaccharides and Their Use in Li-O<sub>2</sub> Batteries
Nanomaterials
starch
chitosan
polysaccharide
amylose
ionic liquid
carbon
author_facet María Uriburu-Gray
Aránzazu Pinar-Serrano
Gokhan Cavus
Etienne Knipping
Christophe Aucher
Aleix Conesa-Cabeza
Amro Satti
David Amantia
Sandra Martínez-Crespiera
author_sort María Uriburu-Gray
title Mesoporous Carbons from Polysaccharides and Their Use in Li-O<sub>2</sub> Batteries
title_short Mesoporous Carbons from Polysaccharides and Their Use in Li-O<sub>2</sub> Batteries
title_full Mesoporous Carbons from Polysaccharides and Their Use in Li-O<sub>2</sub> Batteries
title_fullStr Mesoporous Carbons from Polysaccharides and Their Use in Li-O<sub>2</sub> Batteries
title_full_unstemmed Mesoporous Carbons from Polysaccharides and Their Use in Li-O<sub>2</sub> Batteries
title_sort mesoporous carbons from polysaccharides and their use in li-o<sub>2</sub> batteries
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2020-10-01
description Previous studies have demonstrated that the mesoporosity of carbon material obtained by the Starbon<sup>®</sup> process from starch-formed by amylose and amylopectin can be tuned by controlling this ratio (the higher the amylose, the higher the mesoporosity). This study shows that starch type can also be an important parameter to control this mesoporosity. Carbons with controlled mesoporosity (V<sub>meso</sub> from 0.1–0.7 cm<sup>3</sup>/g) have been produced by the pre-mixing of different starches using an ionic liquid (IL) followed by a modified Starbon<sup>®</sup> process. The results show that the use of starch from corn and maize (commercially available Hylon VII with maize, respectively) is the better combination to increase the mesopore volume. Moreover, “low-cost” mesoporous carbons have been obtained by the direct carbonization of the pre-treated starch mixtures with the IL. In all cases, the IL can be recovered and reused, as demonstrated by its recycling up to three times. Furthermore, and as a comparison, chitosan has been also used as a precursor to obtain N-doped mesoporous carbons (5.5 wt% N) with moderate mesoporosity (V<sub>meso</sub> = 0.43 cm<sup>3</sup>/g). The different mesoporous carbons have been tested as cathode components in Li-O<sub>2</sub> batteries and it is shown that a higher carbon mesoporosity, produced from starch precursor, or the N-doping, produced from chitosan precursor, increase the final battery cell performance (specific capacity and cycling).
topic starch
chitosan
polysaccharide
amylose
ionic liquid
carbon
url https://www.mdpi.com/2079-4991/10/10/2036
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