Sustainable epoxy thermosets and nanocomposites /

"This book is about Sustainable Epoxy Thermosets and Nanocomposites"--

Bibliographic Details
Other Authors: Karak, Niranjan (Editor)
Format: eBook
Language:English
Published: Washington, DC : American Chemical Society, [2021]
Series:ACS symposium series ; 1385
Subjects:
Online Access:Connect to the full text of this electronic book
Table of Contents:
  • Intro
  • Sustainable Epoxy Thermosets and Nanocomposites
  • ACS Symposium Series1385
  • Sustainable Epoxy Thermosets and Nanocomposites
  • Library of Congress Cataloging-in-Publication Data
  • Foreword
  • Preface
  • Overview of Epoxies and Their Thermosets
  • Modification of Epoxies
  • Epoxy Biocomposites
  • Epoxy Nanocomposites with Silicon-Based Nanomaterials
  • Epoxy Nanocomposites with Graphene Derivatives
  • Epoxy Nanocomposites with Carbon Nanotubes
  • Nanocomposites of Epoxy and Carbon Dots
  • Nanocomposites of Epoxy and Cellulosic Nanomaterials
  • Nanocomposites of Epoxy and Metal Nanoparticles
  • Nanocomposites of Epoxy and Metal Oxide Nanoparticles
  • Nanocomposites of Epoxy and Other Miscellaneous Nanomaterials
  • Editor's Biography
  • Indexes
  • Indexes
  • Author Index
  • Subject Index
  • Preface
  • 1
  • Overview of Epoxies and Their Thermosets
  • Introduction
  • Background and Significance
  • Types of Epoxies
  • Materials
  • Figure 1. Synthetic route of glycidyl ether epoxy.
  • Petroleum-Based Raw Materials: Diols and Polyols
  • Bio-Based Raw Materials
  • Oxirane Ring-Containing Compounds
  • Figure 2. (A) Petroleum-based and (B) bio-based routes for the synthesis of epichlorohydrin.
  • Catalysts
  • Branch-Generating Reactants
  • Curing Agents
  • Methods of Preparation
  • Petroleum-Based Glycidyl Epoxies with Linear Structures
  • Petroleum-Based Glycidyl Epoxies with Hyperbranched Structures
  • Figure 3. Functionalization of the end groups of a hyperbranched polymer to obtain a hyperbranched epoxy.
  • Figure 4. Synthesis of hyperbranched epoxy by a proton-transfer reaction.
  • Bio-Based Glycidyl Epoxies
  • Figure 5. Synthesis of hyperbranched epoxy by a polycondensation reaction.
  • Bio-Based Non-Glycidyl Epoxies
  • Peracid Method
  • Figure 6. Transformation of soybean oil to obtain ESO by m-chloroperbenzoic acid.
  • Hydroperoxide Method
  • Molecular Oxygen Method
  • Halohydrin Method
  • Chemoenzymatic Method
  • Various Bio-Based Epoxies
  • Cardanol-Based Epoxies
  • Furan-Based Epoxies
  • Rosin-Based Epoxies
  • Lignin-Based Epoxies
  • Itaconic Acid-Based Epoxies
  • Gallic Acid-Based Epoxies
  • Vanillin-Based Epoxies
  • Isosorbide-Based Epoxies
  • Cinnamic Acid-Based Epoxies
  • Catechin-Based Epoxy
  • Eugenol-Based Epoxies
  • Figure 7. Bio-based epoxies derived from different natural products.
  • Carbohydrate-Based Epoxies
  • Characterization
  • Curing of Epoxies
  • Properties
  • Mechanical Properties
  • Thermal Properties
  • Electrical Properties
  • Flame Retardancy
  • Chemical Resistance
  • Biodegradation
  • Applications
  • Surface Coatings and Paints