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Cellulose-Silica Nanocomposites of High Reinforcing Content with Fungi Decay Resistance by One-Pot Synthesis

Hybrid bionanocomposites based on cellulose matrix, with silica nanoparticles as reinforcers, were prepared by one-pot synthesis of cellulose surface modified by solvent exchange method to keep the biopolymer net void for hosting inorganic nanoparticles. Neither expensive inorganic-particle precurso...

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Autores principales: Rodríguez-Robledo, M. Concepción, González-Lozano, M. Azucena, Ponce-Peña, Patricia, Quintana Owen, Patricia, Aguilar-González, Miguel Angel, Nieto-Castañeda, Georgina, Bazán-Mora, Elva, López-Martínez, Rubén, Ramírez-Galicia, Guillermo, Poisot, Martha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5951459/
https://www.ncbi.nlm.nih.gov/pubmed/29642522
http://dx.doi.org/10.3390/ma11040575
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author Rodríguez-Robledo, M. Concepción
González-Lozano, M. Azucena
Ponce-Peña, Patricia
Quintana Owen, Patricia
Aguilar-González, Miguel Angel
Nieto-Castañeda, Georgina
Bazán-Mora, Elva
López-Martínez, Rubén
Ramírez-Galicia, Guillermo
Poisot, Martha
author_facet Rodríguez-Robledo, M. Concepción
González-Lozano, M. Azucena
Ponce-Peña, Patricia
Quintana Owen, Patricia
Aguilar-González, Miguel Angel
Nieto-Castañeda, Georgina
Bazán-Mora, Elva
López-Martínez, Rubén
Ramírez-Galicia, Guillermo
Poisot, Martha
author_sort Rodríguez-Robledo, M. Concepción
collection PubMed
description Hybrid bionanocomposites based on cellulose matrix, with silica nanoparticles as reinforcers, were prepared by one-pot synthesis of cellulose surface modified by solvent exchange method to keep the biopolymer net void for hosting inorganic nanoparticles. Neither expensive inorganic-particle precursors nor crosslinker agents or catalysts were used for effective dispersion of reinforcer concentration up to 50 wt %. Scanning electron microscopy of the nanocomposites shows homogeneous dispersion of reinforcers in the surface modified cellulose matrix. The FTIR spectra demonstrated the cellulose features even at 50 weight percent content of silica nanoparticles. Such a high content of silica provides high thermal stability to composites, as seen by TGA-DSC. The fungi decay resistance to Trametes versicolor was measured by standard test showing good resistance even with no addition of antifungal agents. This one-pot synthesis of biobased hybrid materials represents an excellent way for industrial production of high performance materials, with a high content of inorganic nanoparticles, for a wide variety of applications.
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spelling pubmed-59514592018-05-15 Cellulose-Silica Nanocomposites of High Reinforcing Content with Fungi Decay Resistance by One-Pot Synthesis Rodríguez-Robledo, M. Concepción González-Lozano, M. Azucena Ponce-Peña, Patricia Quintana Owen, Patricia Aguilar-González, Miguel Angel Nieto-Castañeda, Georgina Bazán-Mora, Elva López-Martínez, Rubén Ramírez-Galicia, Guillermo Poisot, Martha Materials (Basel) Article Hybrid bionanocomposites based on cellulose matrix, with silica nanoparticles as reinforcers, were prepared by one-pot synthesis of cellulose surface modified by solvent exchange method to keep the biopolymer net void for hosting inorganic nanoparticles. Neither expensive inorganic-particle precursors nor crosslinker agents or catalysts were used for effective dispersion of reinforcer concentration up to 50 wt %. Scanning electron microscopy of the nanocomposites shows homogeneous dispersion of reinforcers in the surface modified cellulose matrix. The FTIR spectra demonstrated the cellulose features even at 50 weight percent content of silica nanoparticles. Such a high content of silica provides high thermal stability to composites, as seen by TGA-DSC. The fungi decay resistance to Trametes versicolor was measured by standard test showing good resistance even with no addition of antifungal agents. This one-pot synthesis of biobased hybrid materials represents an excellent way for industrial production of high performance materials, with a high content of inorganic nanoparticles, for a wide variety of applications. MDPI 2018-04-09 /pmc/articles/PMC5951459/ /pubmed/29642522 http://dx.doi.org/10.3390/ma11040575 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rodríguez-Robledo, M. Concepción
González-Lozano, M. Azucena
Ponce-Peña, Patricia
Quintana Owen, Patricia
Aguilar-González, Miguel Angel
Nieto-Castañeda, Georgina
Bazán-Mora, Elva
López-Martínez, Rubén
Ramírez-Galicia, Guillermo
Poisot, Martha
Cellulose-Silica Nanocomposites of High Reinforcing Content with Fungi Decay Resistance by One-Pot Synthesis
title Cellulose-Silica Nanocomposites of High Reinforcing Content with Fungi Decay Resistance by One-Pot Synthesis
title_full Cellulose-Silica Nanocomposites of High Reinforcing Content with Fungi Decay Resistance by One-Pot Synthesis
title_fullStr Cellulose-Silica Nanocomposites of High Reinforcing Content with Fungi Decay Resistance by One-Pot Synthesis
title_full_unstemmed Cellulose-Silica Nanocomposites of High Reinforcing Content with Fungi Decay Resistance by One-Pot Synthesis
title_short Cellulose-Silica Nanocomposites of High Reinforcing Content with Fungi Decay Resistance by One-Pot Synthesis
title_sort cellulose-silica nanocomposites of high reinforcing content with fungi decay resistance by one-pot synthesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5951459/
https://www.ncbi.nlm.nih.gov/pubmed/29642522
http://dx.doi.org/10.3390/ma11040575
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