Shape Memory Polymeric Nanocomposites
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Shape Memory Polymeric Nanocomposites: Properties and Applications

Shape Memory Polymeric Nanocomposites: Properties and Applications


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About the Book

This book is an invaluable guide that summarizes the state-of-the-art knowledge on indispensable features and processing of shape memory polymers and nanocomposite. It provides its readers with different routes and possibilities to alter the physico-chemical features of polymer nanocomposites to tune them for specific applications. Different functional response to stimuli of polymer-based nanocomposites and their use as foam materials, radiation shielding, sensors, actuators, energy devices, and in biomedical devices is explored. The book gives a comprehensive account of the past, present and future of smart nanomaterials from polyurethanes, polystyrenes, epoxides, and polyesters.

Table of Contents:
Preface Chapter 1: Prominence of shape memory polymer 1.1. Introduction 1.2. History of shape memory polymer 1.3. Shape memory phenomenon 1.3.1. One-way shape memory effect 1.3.2. Two-way shape memory effect 1.3.3. Triple shape memory 1.3.4. Multi-way shape memory effect 1.4. Physically cross-linked shape memory polymer 1.5. Covalently cross-linked shape memory polymer 1.6. Structure and essential properties of shape memory polymer 1.7. Significance of shape memory polymer 1.8. Summary Chapter 2: Shape memory polymer-based nanocomposite 2.1. Preamble 2.2. Polymeric nanocomposite 2.3. Shape memory effect in polymeric nanocomposite 2.4. Influence of nanofiller dispersion and compatibilization on shape recovery 2.5. Characteristics of stimuli-responsive nanocomposite 2.6. Future outlook 2.7. Conclusions Chapter 3: Polyurethane: Excellent contender for shape memory nanomaterial 3.1. Introduction 3.2. Polyurethane 3.3. Shape memory performance of polyurethane 3.4. Nanocomposite-based on shape memory polyurethane 3.4.1. Thermo-responsive shape memory polyurethane nanocomposite 3.4.2. Electro-active shape memory polyurethane nanocomposite 3.4.3. Photo-responsive shape memory polyurethane nanocomposite 3.4.4. Moisture/pH-responsive shape memory polyurethane nanocomposite 3.5. Benefits of using nanocarbon nanoparticles in shape memory polyurethane 3.6. Dispersion and miscibility challenges 3.7. Scientific importance of shape memory polyurethane material 3.8. Summation Chapter 4: Epoxy-based nanocomposites: Emerging stimuli-responsive material 4.1. Prologue 4.2. Epoxy resin 4.3. Shape memory epoxy resin 4.4. Reinforcements in shape memory epoxy 4.5. Physical and shape memory properties of epoxy-based nanocomposite 4.6. Progressive relevance of shape memory epoxy-based nanocomposite 4.7. Challenges and trends 4.8. Inference Chapter 5: Perspectives on stimuli-sensitive polyester nanocomposites 5.1. Introduction 5.2. Polyester 5.3. Stimuli-sensitive polyester 5.4. Reinforced polyester-based stimuli-responsive nanomaterials 5.4.1. Polyester/carbon nanotube 5.4.2. Polyester/graphene 5.4.3. Polyester/fullerene 5.4.4. Hybrid nanoparticles in polyesters 5.5. Technical impact of shape memory polyester-based nanocomposite 5.6. Challenges and future advances 5.7. Summary Chapter 6: Shape memory polystyrene and derived nanocomposites 6.1. Preamble 6.2. Polystyrene 6.3. Thermo-responsive polystyrene nanocomposite 6.4. Electro-responsive polystyrene nanocomposite 6.5. Photo-responsive polystyrene nanocomposite 6.6. Significance and future prospects of shape memory polystyrene nanocomposite 6.7. Conclusion Chapter 7: Cutting-edge shape memory nanocomposite sponges 7.1. Prelude 7.2. Polymeric nanocomposite sponges 7.3. Carbon nanotube reinforced shape memory sponges 7.4. Graphene filled shape memory sponges 7.5. Inorganic nanoparticle derived shape memory sponges 7.6. Application of shape memory nanocomposite sponges: Aerospace, automotive and environmental relevance 7.7. Challenges and summation Chapter 8: Shape memory nanomaterials in Aerospace 8.1. Introduction 8.2. Fiber reinforced shape memory polymer for aerospace 8.3. Fiber reinforced shape memory nanocomposite for aerospace 8.3.1. Antenna 8.3.2. Morphing wing 8.3.3. Booms 8.3.4. Solar panel 8.4. Shock effect in aerospace relevant shape memory nanomaterials 8.5. Future encounters and summary Chapter 9: Electromagnetic interference shielding effect of stimuli-responsive nanocomposite 9.1. Introduction 9.2. Electromagnetic interference shielding polymers 9.3. Electromagnetic interference defensive polymeric nanocomposite 9.4. Shape memory architectures for enhanced radiation shielding 9.4.1. Nanocarbon-based nanostructured polymeric material 9.4.2. Inorganic nanofiller-based nanostructured polymeric material 9.5. Current imprint and encounters 9.6. Summary Chapter 10: Insights on multipurpose shape memory nanocomposite?Sensor, actuator, supercapacitor and electronics 10.1. Preamble 10.2. Shape memory nanocomposite in sensor 10.3. Actuator based on shape memory nanocomposite 10.4. Supercapacitor relying on shape memory nanocomposite 10.5. Development of electronics/microelectronics using shape memory nanomaterials 10.6. Performance and property enhancement using shape memory nanocomposites 10.7. Challenges and inference Chapter 11: Versatile shape memory nanocomposite: Technological platform for biomedical application 11.1. Intro 11.2. Biodegradability and biocompatibility of shape memory nanomaterial 11.3. Shape memory effect in tissue engineering and artificial muscles 11.4. Shape memory nanomaterial toward sustained drug delivery 11.5. Challenging aspects and future 11.6. Summary References Index

About the Author :
Ayesha Kausar works with National Centre for Physics, Islamabad, Pakistan, Quaid-i-Azam University, Islamabad, Pakistan, and National University of Sciences and Technology, Islamabad, Pakistan. She obtained her PhD from Quaid-i-Azam University, Islamabad/KAIST (Korea Advanced Institute of Science & Technology), Graduate School of EEWS, Daejeon, Republic of Korea. Her research interests include: synthesis, characterization and structure-property relationships of new polymeric materials; synthesis of nanomaterials including organic?inorganic nanocomposites/hybrid materials; polymeric blends via incorporating nanoparticles into thin polymer films; exploring practical and potential prospects of the novel synthesized materials (new polymers and nanomaterials).


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Product Details
  • ISBN-13: 9783527348916
  • Publisher: Wiley-VCH Verlag GmbH
  • Publisher Imprint: Wiley-VCH Verlag GmbH
  • Height: 244 mm
  • No of Pages: 350
  • Returnable: N
  • Width: 170 mm
  • ISBN-10: 3527348913
  • Publisher Date: 25 May 2022
  • Binding: Hardback
  • Language: English
  • Returnable: N
  • Sub Title: Properties and Applications


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Shape Memory Polymeric Nanocomposites: Properties and Applications
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