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Cellulose Nanofiber–Alginate Biotemplated Cobalt Composite Multifunctional Aerogels for Energy Storage Electrodes
Tunable porous composite materials to control metal and metal oxide functionalization, conductivity, pore structure, electrolyte mass transport, mechanical strength, specific surface area, and magneto-responsiveness are critical for a broad range of energy storage, catalysis, and sensing application...
Autores principales: | , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2023
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10671317/ https://www.ncbi.nlm.nih.gov/pubmed/37998983 http://dx.doi.org/10.3390/gels9110893 |
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author | Zhang, Felita W. Trackey, Paul D. Verma, Vani Mandes, Galen T. Calabro, Rosemary L. Presot, Anthony W. Tsay, Claire K. Lawton, Timothy J. Zammit, Alexa S. Tang, Edward M. Nguyen, Andrew Q. Munz, Kennedy V. Nagelli, Enoch A. Bartolucci, Stephen F. Maurer, Joshua A. Burpo, F. John |
author_facet | Zhang, Felita W. Trackey, Paul D. Verma, Vani Mandes, Galen T. Calabro, Rosemary L. Presot, Anthony W. Tsay, Claire K. Lawton, Timothy J. Zammit, Alexa S. Tang, Edward M. Nguyen, Andrew Q. Munz, Kennedy V. Nagelli, Enoch A. Bartolucci, Stephen F. Maurer, Joshua A. Burpo, F. John |
author_sort | Zhang, Felita W. |
collection | PubMed |
description | Tunable porous composite materials to control metal and metal oxide functionalization, conductivity, pore structure, electrolyte mass transport, mechanical strength, specific surface area, and magneto-responsiveness are critical for a broad range of energy storage, catalysis, and sensing applications. Biotemplated transition metal composite aerogels present a materials approach to address this need. To demonstrate a solution-based synthesis method to develop cobalt and cobalt oxide aerogels for high surface area multifunctional energy storage electrodes, carboxymethyl cellulose nanofibers (CNF) and alginate biopolymers were mixed to form hydrogels to serve as biotemplates for cobalt nanoparticle formation via the chemical reduction of cobalt salt solutions. The CNF–alginate mixture forms a physically entangled, interpenetrating hydrogel, combining the properties of both biopolymers for monolith shape and pore size control and abundant carboxyl groups that bind metal ions to facilitate biotemplating. The CNF–alginate hydrogels were equilibrated in CaCl(2) and CoCl(2) salt solutions for hydrogel ionic crosslinking and the prepositioning of transition metal ions, respectively. The salt equilibrated hydrogels were chemically reduced with NaBH(4), rinsed, solvent exchanged in ethanol, and supercritically dried with CO(2) to form aerogels with a specific surface area of 228 m(2)/g. The resulting aerogels were pyrolyzed in N(2) gas and thermally annealed in air to form Co and Co(3)O(4) porous composite electrodes, respectively. The multifunctional composite aerogel’s mechanical, magnetic, and electrochemical functionality was characterized. The coercivity and specific magnetic saturation of the pyrolyzed aerogels were 312 Oe and 114 emu/g(Co), respectively. The elastic moduli of the supercritically dried, pyrolyzed, and thermally oxidized aerogels were 0.58, 1.1, and 14.3 MPa, respectively. The electrochemical testing of the pyrolyzed and thermally oxidized aerogels in 1 M KOH resulted in specific capacitances of 650 F/g and 349 F/g, respectively. The rapidly synthesized, low-cost, hydrogel-based synthesis for tunable transition metal multifunctional composite aerogels is envisioned for a wide range of porous metal electrodes to address energy storage, catalysis, and sensing applications. |
format | Online Article Text |
id | pubmed-10671317 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-106713172023-11-11 Cellulose Nanofiber–Alginate Biotemplated Cobalt Composite Multifunctional Aerogels for Energy Storage Electrodes Zhang, Felita W. Trackey, Paul D. Verma, Vani Mandes, Galen T. Calabro, Rosemary L. Presot, Anthony W. Tsay, Claire K. Lawton, Timothy J. Zammit, Alexa S. Tang, Edward M. Nguyen, Andrew Q. Munz, Kennedy V. Nagelli, Enoch A. Bartolucci, Stephen F. Maurer, Joshua A. Burpo, F. John Gels Article Tunable porous composite materials to control metal and metal oxide functionalization, conductivity, pore structure, electrolyte mass transport, mechanical strength, specific surface area, and magneto-responsiveness are critical for a broad range of energy storage, catalysis, and sensing applications. Biotemplated transition metal composite aerogels present a materials approach to address this need. To demonstrate a solution-based synthesis method to develop cobalt and cobalt oxide aerogels for high surface area multifunctional energy storage electrodes, carboxymethyl cellulose nanofibers (CNF) and alginate biopolymers were mixed to form hydrogels to serve as biotemplates for cobalt nanoparticle formation via the chemical reduction of cobalt salt solutions. The CNF–alginate mixture forms a physically entangled, interpenetrating hydrogel, combining the properties of both biopolymers for monolith shape and pore size control and abundant carboxyl groups that bind metal ions to facilitate biotemplating. The CNF–alginate hydrogels were equilibrated in CaCl(2) and CoCl(2) salt solutions for hydrogel ionic crosslinking and the prepositioning of transition metal ions, respectively. The salt equilibrated hydrogels were chemically reduced with NaBH(4), rinsed, solvent exchanged in ethanol, and supercritically dried with CO(2) to form aerogels with a specific surface area of 228 m(2)/g. The resulting aerogels were pyrolyzed in N(2) gas and thermally annealed in air to form Co and Co(3)O(4) porous composite electrodes, respectively. The multifunctional composite aerogel’s mechanical, magnetic, and electrochemical functionality was characterized. The coercivity and specific magnetic saturation of the pyrolyzed aerogels were 312 Oe and 114 emu/g(Co), respectively. The elastic moduli of the supercritically dried, pyrolyzed, and thermally oxidized aerogels were 0.58, 1.1, and 14.3 MPa, respectively. The electrochemical testing of the pyrolyzed and thermally oxidized aerogels in 1 M KOH resulted in specific capacitances of 650 F/g and 349 F/g, respectively. The rapidly synthesized, low-cost, hydrogel-based synthesis for tunable transition metal multifunctional composite aerogels is envisioned for a wide range of porous metal electrodes to address energy storage, catalysis, and sensing applications. MDPI 2023-11-11 /pmc/articles/PMC10671317/ /pubmed/37998983 http://dx.doi.org/10.3390/gels9110893 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Zhang, Felita W. Trackey, Paul D. Verma, Vani Mandes, Galen T. Calabro, Rosemary L. Presot, Anthony W. Tsay, Claire K. Lawton, Timothy J. Zammit, Alexa S. Tang, Edward M. Nguyen, Andrew Q. Munz, Kennedy V. Nagelli, Enoch A. Bartolucci, Stephen F. Maurer, Joshua A. Burpo, F. John Cellulose Nanofiber–Alginate Biotemplated Cobalt Composite Multifunctional Aerogels for Energy Storage Electrodes |
title | Cellulose Nanofiber–Alginate Biotemplated Cobalt Composite Multifunctional Aerogels for Energy Storage Electrodes |
title_full | Cellulose Nanofiber–Alginate Biotemplated Cobalt Composite Multifunctional Aerogels for Energy Storage Electrodes |
title_fullStr | Cellulose Nanofiber–Alginate Biotemplated Cobalt Composite Multifunctional Aerogels for Energy Storage Electrodes |
title_full_unstemmed | Cellulose Nanofiber–Alginate Biotemplated Cobalt Composite Multifunctional Aerogels for Energy Storage Electrodes |
title_short | Cellulose Nanofiber–Alginate Biotemplated Cobalt Composite Multifunctional Aerogels for Energy Storage Electrodes |
title_sort | cellulose nanofiber–alginate biotemplated cobalt composite multifunctional aerogels for energy storage electrodes |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10671317/ https://www.ncbi.nlm.nih.gov/pubmed/37998983 http://dx.doi.org/10.3390/gels9110893 |
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