A new approach for the use of anionic surfactants: nanocellulose modification and development of biodegradable nanocomposites
The stabilization of nanocellulose suspensions and their compatibility with polymer matrices are challenges that have been investigated in the scientific community. However, little work has resulted in significant electrostatic stabilization as well as improved the mechanical behavior of nanocomposi...
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Published in: | Cellulose (London) Vol. 27; no. 10; pp. 5707 - 5728 |
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01-07-2020
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Abstract | The stabilization of nanocellulose suspensions and their compatibility with polymer matrices are challenges that have been investigated in the scientific community. However, little work has resulted in significant electrostatic stabilization as well as improved the mechanical behavior of nanocomposites. Anionic surfactant modified nanocellulose, and the results demonstrated the impact of the concentration of this surfactant on nanocellulose surfaces and properties. The variation in electrostatic stability was evaluated by the zeta potential, which is key to the comprehension of dispersion and agglomeration in suspensions. Also, physicochemical tests were conducted to analyze the properties of nanocelluloses. The addition of the surfactant and its effects were verified by physicochemical characterization; it was evaluated the crystallinity, thermal stability, composition, adsorption effect, and other properties. Mechanical, thermal and physicochemical tests were conducted to understand the influence of nanoparticles on nanocomposites. The results of this study demonstrated that the surfactant-modified cellulose nanostructures presented excellent electrostatic and thermal stability, which made the developed materials potential reinforcing agents for the incorporation of polymeric matrices. These modified CNSs were incorporated in a poly(butylene adipate-co-terephthalate), and improvements of its mechanical properties were observed. Also, the thermal stability of the polymer was maintained, and the water diffusion coefficient was reduced, favoring applications that need this characteristic, like plastic packaging. |
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AbstractList | The stabilization of nanocellulose suspensions and their compatibility with polymer matrices are challenges that have been investigated in the scientific community. However, little work has resulted in significant electrostatic stabilization as well as improved the mechanical behavior of nanocomposites. Anionic surfactant modified nanocellulose, and the results demonstrated the impact of the concentration of this surfactant on nanocellulose surfaces and properties. The variation in electrostatic stability was evaluated by the zeta potential, which is key to the comprehension of dispersion and agglomeration in suspensions. Also, physicochemical tests were conducted to analyze the properties of nanocelluloses. The addition of the surfactant and its effects were verified by physicochemical characterization; it was evaluated the crystallinity, thermal stability, composition, adsorption effect, and other properties. Mechanical, thermal and physicochemical tests were conducted to understand the influence of nanoparticles on nanocomposites. The results of this study demonstrated that the surfactant-modified cellulose nanostructures presented excellent electrostatic and thermal stability, which made the developed materials potential reinforcing agents for the incorporation of polymeric matrices. These modified CNSs were incorporated in a poly(butylene adipate-co-terephthalate), and improvements of its mechanical properties were observed. Also, the thermal stability of the polymer was maintained, and the water diffusion coefficient was reduced, favoring applications that need this characteristic, like plastic packaging. |
Author | de Lima, Giovanni F. de Souza, Alana G. Colombo, Renata Rosa, Derval S. |
Author_xml | – sequence: 1 givenname: Alana G. surname: de Souza fullname: de Souza, Alana G. organization: Engineering, Modeling and Applied Social Sciences Center (CECS), Federal University of ABC – sequence: 2 givenname: Giovanni F. surname: de Lima fullname: de Lima, Giovanni F. organization: Engineering, Modeling and Applied Social Sciences Center (CECS), Federal University of ABC – sequence: 3 givenname: Renata surname: Colombo fullname: Colombo, Renata organization: School of Arts, Sciences and Humanities (EACH), University of São Paulo – sequence: 4 givenname: Derval S. orcidid: 0000-0001-9470-0638 surname: Rosa fullname: Rosa, Derval S. email: derval.rosa@ufabc.edu.br organization: Engineering, Modeling and Applied Social Sciences Center (CECS), Federal University of ABC |
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SubjectTerms | Biodegradability Bioorganic Chemistry Ceramics Chemistry Chemistry and Materials Science Composites Composition effects Diffusion coefficient Glass Mechanical properties Nanocomposites Nanoparticles Natural Materials Organic Chemistry Original Research Physical Chemistry Polymer Sciences Polymers Stability analysis Surfactants Sustainable Development Terephthalate Thermal stability Zeta potential |
Title | A new approach for the use of anionic surfactants: nanocellulose modification and development of biodegradable nanocomposites |
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