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Novel biodegradable low-κ dielectric nanomaterials from natural polyphenols

Biodegradable natural polymers and macromolecules for transient electronics have great potential to reduce the environmental footprint and provide opportunities to create emerging and environmentally sustainable technologies. Creating complex electronic devices from biodegradable materials requires...

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Autores principales: Saha, Sujoy, Dawood, Sheeba, Butreddy, Pravalika, Pathiraja, Gayani, Rathnayake, Hemali
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9032199/
https://www.ncbi.nlm.nih.gov/pubmed/35479177
http://dx.doi.org/10.1039/d1ra01513c
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author Saha, Sujoy
Dawood, Sheeba
Butreddy, Pravalika
Pathiraja, Gayani
Rathnayake, Hemali
author_facet Saha, Sujoy
Dawood, Sheeba
Butreddy, Pravalika
Pathiraja, Gayani
Rathnayake, Hemali
author_sort Saha, Sujoy
collection PubMed
description Biodegradable natural polymers and macromolecules for transient electronics have great potential to reduce the environmental footprint and provide opportunities to create emerging and environmentally sustainable technologies. Creating complex electronic devices from biodegradable materials requires exploring their chemical design pathways to use them as substrates, dielectric insulators, conductors, and semiconductors. While most research exploration has been conducted using natural polymers as substrates for electronic devices, a very few natural polymers have been explored as dielectric insulators, but they possess high dielectric constants. Herein, for the first time, we have demonstrated a natural polyphenol-based nanomaterial, derived from tannic acid as a low-κ dielectric material by introducing a highly nanoporous framework with a silsesquioxane core structure. Utilizing natural tannic acid, porous “raspberry-like” nanoparticles (TA-NPs) are prepared by a sol–gel polymerization method, starting from reactive silane unit-functionalized tannic acid. Particle composition, thermal stability, porosity distribution, and morphology are analyzed, confirming the mesoporous nature of the nanoparticles with an average pore diameter ranging from 19 to 23 nm, pore volume of 0.032 cm(3) g(−1) and thermal stability up to 350 °C. The dielectric properties of the TA-NPs, silane functionalized tannic acid precursor, and tannic acid are evaluated and compared by fabricating thin film capacitors under ambient conditions. The dielectric constants (κ) are found to be 2.98, 2.84, and 2.69 (±0.02) for tannic acid, tannic acid-silane, and TA-NPs, respectively. The unique chemical design approach developed in this work provides us with a path to create low-κ biodegradable nanomaterials from natural polyphenols by weakening their polarizability and introducing high mesoporosity into the structure.
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spelling pubmed-90321992022-04-26 Novel biodegradable low-κ dielectric nanomaterials from natural polyphenols Saha, Sujoy Dawood, Sheeba Butreddy, Pravalika Pathiraja, Gayani Rathnayake, Hemali RSC Adv Chemistry Biodegradable natural polymers and macromolecules for transient electronics have great potential to reduce the environmental footprint and provide opportunities to create emerging and environmentally sustainable technologies. Creating complex electronic devices from biodegradable materials requires exploring their chemical design pathways to use them as substrates, dielectric insulators, conductors, and semiconductors. While most research exploration has been conducted using natural polymers as substrates for electronic devices, a very few natural polymers have been explored as dielectric insulators, but they possess high dielectric constants. Herein, for the first time, we have demonstrated a natural polyphenol-based nanomaterial, derived from tannic acid as a low-κ dielectric material by introducing a highly nanoporous framework with a silsesquioxane core structure. Utilizing natural tannic acid, porous “raspberry-like” nanoparticles (TA-NPs) are prepared by a sol–gel polymerization method, starting from reactive silane unit-functionalized tannic acid. Particle composition, thermal stability, porosity distribution, and morphology are analyzed, confirming the mesoporous nature of the nanoparticles with an average pore diameter ranging from 19 to 23 nm, pore volume of 0.032 cm(3) g(−1) and thermal stability up to 350 °C. The dielectric properties of the TA-NPs, silane functionalized tannic acid precursor, and tannic acid are evaluated and compared by fabricating thin film capacitors under ambient conditions. The dielectric constants (κ) are found to be 2.98, 2.84, and 2.69 (±0.02) for tannic acid, tannic acid-silane, and TA-NPs, respectively. The unique chemical design approach developed in this work provides us with a path to create low-κ biodegradable nanomaterials from natural polyphenols by weakening their polarizability and introducing high mesoporosity into the structure. The Royal Society of Chemistry 2021-05-06 /pmc/articles/PMC9032199/ /pubmed/35479177 http://dx.doi.org/10.1039/d1ra01513c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Saha, Sujoy
Dawood, Sheeba
Butreddy, Pravalika
Pathiraja, Gayani
Rathnayake, Hemali
Novel biodegradable low-κ dielectric nanomaterials from natural polyphenols
title Novel biodegradable low-κ dielectric nanomaterials from natural polyphenols
title_full Novel biodegradable low-κ dielectric nanomaterials from natural polyphenols
title_fullStr Novel biodegradable low-κ dielectric nanomaterials from natural polyphenols
title_full_unstemmed Novel biodegradable low-κ dielectric nanomaterials from natural polyphenols
title_short Novel biodegradable low-κ dielectric nanomaterials from natural polyphenols
title_sort novel biodegradable low-κ dielectric nanomaterials from natural polyphenols
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9032199/
https://www.ncbi.nlm.nih.gov/pubmed/35479177
http://dx.doi.org/10.1039/d1ra01513c
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