Wood-Mimicking Bio-Based Biporous Polymeric Materials with Anisotropic Tubular Macropores

Understanding physical phenomena related to fluid flow transport in plants and especially through wood is still a major challenge for the scientific community. To this end, we have focused our attention on the design of wood-mimicking polymeric architectures through a strategy based on the double po...

Full description

Bibliographic Details
Main Authors: Vierajitha Srikanthan, Olivier Pitois, Philippe Coussot, Benjamin Le Droumaguet, Daniel Grande
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/16/2692
id doaj-f42f869d9811487680d8f9583daad837
record_format Article
spelling doaj-f42f869d9811487680d8f9583daad8372021-08-26T14:15:14ZengMDPI AGPolymers2073-43602021-08-01132692269210.3390/polym13162692Wood-Mimicking Bio-Based Biporous Polymeric Materials with Anisotropic Tubular MacroporesVierajitha Srikanthan0Olivier Pitois1Philippe Coussot2Benjamin Le Droumaguet3Daniel Grande4Univ Paris Est Creteil, CNRS, ICMPE, UMR 7182, 2 Rue Henri Dunant, 94320 Thiais, FranceUniv Gustave Eiffel, CNRS, Ecole des Ponts ParisTech, UMR 8205 Laboratoire Navier, 5 Boulevard Descartes, CEDEX 2, 77454 Marne-la-Vallée, FranceUniv Gustave Eiffel, CNRS, Ecole des Ponts ParisTech, UMR 8205 Laboratoire Navier, 5 Boulevard Descartes, CEDEX 2, 77454 Marne-la-Vallée, FranceUniv Paris Est Creteil, CNRS, ICMPE, UMR 7182, 2 Rue Henri Dunant, 94320 Thiais, FranceUniv Paris Est Creteil, CNRS, ICMPE, UMR 7182, 2 Rue Henri Dunant, 94320 Thiais, FranceUnderstanding physical phenomena related to fluid flow transport in plants and especially through wood is still a major challenge for the scientific community. To this end, we have focused our attention on the design of wood-mimicking polymeric architectures through a strategy based on the double porogen templating approach which relies on the use of two distinct types of porogens, namely aligned nylon threads and a porogenic solvent, to produce macro- and nanoporosity levels, respectively. A bio-based phenolic functional monomer, i.e., vanillin methacrylate, was employed to mimic either hard wood or soft wood. Upon free-radical polymerization with a crosslinking agent in the presence of both types of porogenic agents, followed by their removal, biporous materials with anistotropic tubular macropores surrounded by a nanoporous matrix were obtained. They were further fully characterized in terms of porosity and chemical composition via mercury intrusion porosimetry, scanning electron microscopy and X-ray microtomography. It was demonstrated that the two porosity levels could be independently tuned by varying structural parameters. Further, the possibility to chemically modify the pore surface and thus to vary the material surface properties was successfully demonstrated by reductive amination with model compounds via Raman spectroscopy and water contact angle measurements.https://www.mdpi.com/2073-4360/13/16/2692bio-based monomersvanillinbiporous polymersanisotropic macroporesdouble porogen templating approach
collection DOAJ
language English
format Article
sources DOAJ
author Vierajitha Srikanthan
Olivier Pitois
Philippe Coussot
Benjamin Le Droumaguet
Daniel Grande
spellingShingle Vierajitha Srikanthan
Olivier Pitois
Philippe Coussot
Benjamin Le Droumaguet
Daniel Grande
Wood-Mimicking Bio-Based Biporous Polymeric Materials with Anisotropic Tubular Macropores
Polymers
bio-based monomers
vanillin
biporous polymers
anisotropic macropores
double porogen templating approach
author_facet Vierajitha Srikanthan
Olivier Pitois
Philippe Coussot
Benjamin Le Droumaguet
Daniel Grande
author_sort Vierajitha Srikanthan
title Wood-Mimicking Bio-Based Biporous Polymeric Materials with Anisotropic Tubular Macropores
title_short Wood-Mimicking Bio-Based Biporous Polymeric Materials with Anisotropic Tubular Macropores
title_full Wood-Mimicking Bio-Based Biporous Polymeric Materials with Anisotropic Tubular Macropores
title_fullStr Wood-Mimicking Bio-Based Biporous Polymeric Materials with Anisotropic Tubular Macropores
title_full_unstemmed Wood-Mimicking Bio-Based Biporous Polymeric Materials with Anisotropic Tubular Macropores
title_sort wood-mimicking bio-based biporous polymeric materials with anisotropic tubular macropores
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-08-01
description Understanding physical phenomena related to fluid flow transport in plants and especially through wood is still a major challenge for the scientific community. To this end, we have focused our attention on the design of wood-mimicking polymeric architectures through a strategy based on the double porogen templating approach which relies on the use of two distinct types of porogens, namely aligned nylon threads and a porogenic solvent, to produce macro- and nanoporosity levels, respectively. A bio-based phenolic functional monomer, i.e., vanillin methacrylate, was employed to mimic either hard wood or soft wood. Upon free-radical polymerization with a crosslinking agent in the presence of both types of porogenic agents, followed by their removal, biporous materials with anistotropic tubular macropores surrounded by a nanoporous matrix were obtained. They were further fully characterized in terms of porosity and chemical composition via mercury intrusion porosimetry, scanning electron microscopy and X-ray microtomography. It was demonstrated that the two porosity levels could be independently tuned by varying structural parameters. Further, the possibility to chemically modify the pore surface and thus to vary the material surface properties was successfully demonstrated by reductive amination with model compounds via Raman spectroscopy and water contact angle measurements.
topic bio-based monomers
vanillin
biporous polymers
anisotropic macropores
double porogen templating approach
url https://www.mdpi.com/2073-4360/13/16/2692
work_keys_str_mv AT vierajithasrikanthan woodmimickingbiobasedbiporouspolymericmaterialswithanisotropictubularmacropores
AT olivierpitois woodmimickingbiobasedbiporouspolymericmaterialswithanisotropictubularmacropores
AT philippecoussot woodmimickingbiobasedbiporouspolymericmaterialswithanisotropictubularmacropores
AT benjaminledroumaguet woodmimickingbiobasedbiporouspolymericmaterialswithanisotropictubularmacropores
AT danielgrande woodmimickingbiobasedbiporouspolymericmaterialswithanisotropictubularmacropores
_version_ 1721190566283182080