Reprint

Polymer-Based Flexible Materials

Edited by
May 2024
216 pages
  • ISBN978-3-7258-1166-3 (Hardback)
  • ISBN978-3-7258-1165-6 (PDF)
https://0-doi-org.brum.beds.ac.uk/10.3390/books978-3-7258-1165-6 (registering)

This book is a reprint of the Special Issue Polymer-Based Flexible Materials that was published in

Chemistry & Materials Science
Engineering
Summary

Compared to traditional flexible materials, such as metal-based, ceramic-based, and glass-based materials, polymer-based flexible materials have various advantages including low density, easy processing, excellent flexibility, and good environmental stability. Over the past few decades, polymer-based flexible materials have received significant attention due to the rapid development of the electronic industry, medical treatment, health, and other fields. For instance, flexible electronic technology shows great potential for reshaping the lives of human beings, but the bottleneck of flexible electronic technology is the availability of flexible substrates or flexible conductive materials, which can be resolved by modifying or doping polymer-based flexible materials. Moreover, it is possible to synthesize new polymer-based flexible materials or modify them for different purposes to endow them with corresponding functionality. This reprint presents a collection of research papers, communications, and review articles on the latest advances in the fields of synthesis, characterization, and the application of polymer-based flexible materials. The fields that will be discussed include: synthesis (organic elastomers, conductive polymers, and flexible organic networks); structural characterization; modeling; and applications (i.e., sensor, energy harvesting, energy storage, electromagnetic shielding, and biomedical).

Format
  • Hardback
License
© 2024 by the authors; CC BY-NC-ND license
Keywords
composite propellant; thermal damage treatment; thermal weight loss; interaction; combustion characteristics; shear thickening fluid; silicone rubber; microcapsule; impact resistance behavior; pressure sensor; porous hydrogels; natural polymer; phase change microcapsules; infrared camouflage; emissivity; intelligent temperature regulation; textile composites; hyperelastic; polymeric materials; constitutive model; strain energy density function; parameter identification; flexible capacitance pressure sensor; gradient micro-structure; polymer; barium titanate; laser engraving; thermoelectric fiber; conductive polymer; smart textile; temperature sensor; PEDOT:PSS; PEDOT:PSS; Fe3O4; GO; composite film; supercapacitor; thermoelectric; three-dimensional printing; CFRTPCs; FDM; process parameters; mechanical properties; electron irradiation; high and low temperature; polyimide film; mechanical property; rosin; flexible chain; film property; bio-based epoxy; curing agent; epoxy vitrimer; glass transition temperature; epoxy resin E51; curing agent; phthalic anhydride; sebacic acid; flexible capacitive pressure sensor; gradient micro-cone architecture; laser ablation; dielectric constant; linear response; silicone rubber