Generation of PVP Membranes Using Extracts/Phenolic Fraction of Dysphania ambrosioides, Opuntia ficus-indica, and Tradescantia pallida

Author:

Zaca Moran Orlando1ORCID,García Suastegui Wendy Argelia2ORCID,Cruz San Juan Jonathan Hillel1,López Méndez Lawrence Christopher3ORCID,López Gayou Valentin1ORCID

Affiliation:

1. Laboratorio de Bionanotecnología, Centro de Investigación en Biotecnología Aplicada, Instituto Politécnico Nacional (IPN-CIBA), Tlaxcala 90700, Mexico

2. Instituto de Ciencias, Benemérita Universidad Autónoma de Puebla, Puebla 72570, Mexico

3. Independent Researcher, Puebla 72000, Mexico

Abstract

In the present work, electrospun membranes of polyvinylpyrrolidone (PVP) nanofibers were manufactured using extracts and phenolic fractions of Dysphania ambrosioides (epazote), Opuntia ficus-indica (nopal), and Tradescantia pallida (chicken grass). The characterization of the membranes was carried out by scanning electron microscopy and Fourier transform infrared spectroscopy. The membranes synthesized through the use of the extracts generally showed a slight decrease in the diameter of the fibers but an increase in the size of the pores due to the presence of nanoparticles (rosaries) on the surface of the fibers, while the membranes synthesized using the phenolic fraction demonstrated an inversely proportional relationship between the compounds of this family with the diameter of the fibers and the size of the pore, allowing to elucidate part of the polymerization mechanisms of PVP nanofibers, in addition to proposing a reaction mechanism in the interaction between PVP and phenolic compounds for surface functionalization. Likewise, we demonstrate that the generation of reaction seeds through functionalization allows the addition of other compounds to the fibers in the membranes synthesized using the complete extract.

Funder

Instituto Politécnico Nacional

Consejo Nacional de Humanidades Ciencias y Tecnologías (CONAHCyT) for the master Grant

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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