Circularity of Plastics: Sustainability, Emerging Materials, and Valorization of Waste Plastic
Editat de Zibiao Li, Jason Y.C. Lim, Chen-Gang Wangen Limba Engleză Paperback – 24 feb 2023
Emerging technologies used to produce functional polymers from renewable feedstocks, including CO2, biomass, natural polymers, polylactic acid (PLA), and polyhydroxyalkanoate-based materials (PHAs) are then explored, with a final chapter focusing on applications of sustainable materials, challenges, and future perspectives. This is a valuable resource for researchers, scientists, engineers, R&D professionals, and advanced students from a range of disciplines and backgrounds, with an interest in sustainable materials, circularity in plastics, and polymer waste and valorization.
- Explains the fundamental concepts of sustainable materials, circular economy, lifecycle assessment, and valorization of plastic waste
- Presents cutting-edge methods for the conversion or upcycling of waste to sustainable polymers, fuel and fine chemicals, and carbon nanomaterials
- Provides detailed coverage of the development of functional polymers from a range of sustainable and renewable resources
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Specificații
ISBN-13: 9780323911986
ISBN-10: 0323911986
Pagini: 342
Ilustrații: 150 illustrations (30 in full color)
Dimensiuni: 191 x 235 mm
Greutate: 0.59 kg
Editura: ELSEVIER SCIENCE
ISBN-10: 0323911986
Pagini: 342
Ilustrații: 150 illustrations (30 in full color)
Dimensiuni: 191 x 235 mm
Greutate: 0.59 kg
Editura: ELSEVIER SCIENCE
Cuprins
1 Sustainable material management for a circular plastics economy
SECTION 1 Valorization of waste plastics into new materials and fuels
2 Sustainable chemical recycling of plastic waste into new polymers
3 Converting plastic waste to fuel and fine chemicals
4 Upcycling of waste plastics to carbon nanomaterials
SECTION 2 Functional polymers from sustainable and renewable resources
5 Functional polymers from CO2 as feedstock
6 Functional polymers from biomass-based monomers
7 New functional materials from lignocellulosic biomass
8 Poly(lactic acid) (PLA) as a building block for a circular economy
9 Poly(hydroxyalkanoates) (PHAs) based circular materials for a sustainable future
10 Sustainable materials applications: Current challenges and future perspectives
SECTION 1 Valorization of waste plastics into new materials and fuels
2 Sustainable chemical recycling of plastic waste into new polymers
3 Converting plastic waste to fuel and fine chemicals
4 Upcycling of waste plastics to carbon nanomaterials
SECTION 2 Functional polymers from sustainable and renewable resources
5 Functional polymers from CO2 as feedstock
6 Functional polymers from biomass-based monomers
7 New functional materials from lignocellulosic biomass
8 Poly(lactic acid) (PLA) as a building block for a circular economy
9 Poly(hydroxyalkanoates) (PHAs) based circular materials for a sustainable future
10 Sustainable materials applications: Current challenges and future perspectives