2013 Symposium on Piezoelectricity, Acoustic Waves, and Device Applications (SPAWDA 2013) : Changsha, China, 25-27 October 2013
| 2013 Symposium on Piezoelectricity, Acoustic Waves, and Device Applications (SPAWDA 2013) : Changsha, China, 25-27 October 2013 |
| Pubbl/distr/stampa | IEEE |
| Disciplina | 621.3815 |
| Soggetto topico |
Piezoelectric devices
Piezoelectric materials Piezoelectricity Acoustic surface waves |
| ISBN | 1-4799-3288-4 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Altri titoli varianti |
2013 Symposium on Piezoelectricity, Acoustic Waves, and Device Applications
Piezoelectricity, Acoustic Waves and Device Applications |
| Record Nr. | UNISA-996281140003316 |
| IEEE | ||
| Lo trovi qui: Univ. di Salerno | ||
| ||
2013 Symposium on Piezoelectricity, Acoustic Waves, and Device Applications (SPAWDA 2013) : Changsha, China, 25-27 October 2013
| 2013 Symposium on Piezoelectricity, Acoustic Waves, and Device Applications (SPAWDA 2013) : Changsha, China, 25-27 October 2013 |
| Pubbl/distr/stampa | IEEE |
| Disciplina | 621.3815 |
| Soggetto topico |
Piezoelectric devices
Piezoelectric materials Piezoelectricity Acoustic surface waves |
| ISBN |
9781479932887
1479932884 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Altri titoli varianti |
2013 Symposium on Piezoelectricity, Acoustic Waves, and Device Applications
Piezoelectricity, Acoustic Waves and Device Applications |
| Record Nr. | UNINA-9910141905103321 |
| IEEE | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Advanced Functional Piezoelectric Materials and Applications
| Advanced Functional Piezoelectric Materials and Applications |
| Autore | Inamuddin |
| Edizione | [1st ed.] |
| Pubbl/distr/stampa | Millersville : , : Materials Research Forum LLC, , 2022 |
| Descrizione fisica | 1 online resource (290 pages) |
| Collana | Materials Research Foundations |
| Soggetto topico | Piezoelectric materials |
| ISBN | 9781644902097 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto |
Intro -- front-matter -- Table of Contents -- Preface -- 1 -- Types, Properties and Characteristics of Piezoelectric Materials -- 1. Introduction -- 1.1 Single crystals -- 1.2 Ceramics -- 1.3 Composites -- 1.4 Polymers -- 1.5 Sensor configuration based on shape and size -- 1.6 Classification based on dimension -- 2. Properties of piezoelectric materials -- 2.1 Basic equations -- 2.2 Curie temperature -- 2.3 Phase transition -- 2.4 High dielectric constant -- 2.5 Sensitivity -- 2.6 Electromechanical Coupling Factor (k) -- 2.7 Resistivity (R) and time constant (RC) -- 2.7 Quality factors (mechanical and electrical) -- 2.8 Figure of Merit (FOM) and strain coefficient -- 2.9 Piezoelectric resonance frequency -- 2.10 Thermal expansion -- 2.11 Ageing -- 3. Characterization of piezoelectric materials -- 3.1 Measurement of piezoelectric coefficient -- 3.2 Measurement of dielectric constant -- 3.3 Measurement of Curie temperature -- 3.4 Etching and poling -- 3.5 Measurement of hysteresis (PE/SE) loops -- Conclusions -- References -- 2 -- Fabrication Approaches for Piezoelectric Materials -- 1. Introduction -- 2. Preparation techniques for piezoelectric ceramics -- 2.1 Synthesis of ceramic powders -- 2.1 Solid-state reaction -- 2.2 Co-precipitation -- 2.3 Alkoxide hydrolysis -- 2.4 The sintering method -- 2.5 Templated grain growth -- 3. Piezoelectric materials in device fabrication -- 4. Bio-piezoelectric materials -- 4.1 Types bio-piezoelectric materials -- 4.2 Synthesis strategies -- 4.2.1 Thin films -- 4.2.2 Nanoplatforms -- 5. Challenges -- 5.1 Piezoelectric ceramics -- 5.2 Bio-piezoelectric materials -- Conclusion -- References -- 3 -- Piezoelectric Materials-based Nanogenerators -- 1. Introduction -- 2. Piezoelectricity and crystallography -- 3. Maxwell's equations and piezoelectric nanogenerator -- 4. Piezoelectric materials for nanogenerators.
4.1 Ceramic -- 4.1.1 Zinc oxide -- 4.1.2 Barium titanate -- 4.1.3 Lead zirconate titanate (PZT) -- 4.2 Polymer -- 4.2.1 PVDF and its copolymer -- 4.2.2 Polylactic acid -- 4.2.3 Cellulose -- 4.3 Ferroelectret -- 4.4 PVDF based composite -- 4.4.1 Ceramic filler -- 4.4.2 Carbon-based filler -- 4.4.3 Metal based filler -- 4.4.4 Other fillers -- 5. Applications of piezoelectric nanogenerator -- 5.1 Power source of electronic devices -- 5.2 Sensing application -- 6. Challenges and future scopes -- Conclusions -- Acknowledgement -- References -- 4 -- Piezoelectric Materials based Phototronics -- 1. Introduction -- 1.1 Piezoelectric effect -- 1.2 Piezotronic effect -- 2. Piezo-phototronic effect -- 3. Piezoelectric semiconductor NWs -- 4. Effect on 2D materials -- 5. Effect on 3rd generation semiconductors -- 6. Piezo-phototronic effect on LED -- 7. Piezo-phototronic effect on solar cell -- 8. Piezo-phototronics in luminescence applications -- 9. Piezo-phototronics in other applications -- References -- 5 -- Piezoelectric Composites and their Applications -- 1. Introduction -- 2. The mechanism of piezoelectricity and principle of PZT-polymer composites -- 3. Piezoelectric materials -- 4 Applications of piezoelectric composite materials -- 4.1 Energy harvesting applications -- 4.2 Medical applications of piezoelectric materials -- 4.2.1 Piezoelectric medical devices -- 4.2.2 Piezoelectric sensors -- 4.2.3 Piezoelectric prosthetic skin -- 4.2.4 Cochlear implants -- 4.2.5 Piezoelectric surgery -- 4.2.6 Ultrasonic dental scaling -- 4.2.7 Microdosing -- 4.2.8 Energy harvesting -- 4.2.9 Catheter applications -- 4.2.10 Neural stimulators -- 4.2.11 Healthcare monitoring -- 5. Structural health monitoring and repair -- Conclusion -- References -- 6 -- Piezoelectric Materials for Biomedical and Energy Harvesting Applications -- 1. Introduction. 1.1 Types of advance piezoelectric functional materials -- 1.1.1 Polymer piezocomposite -- 1.1.2 Ceramics piezocomposite -- 1.1.3 Polymer ceramics piezocomposite -- 2. Applications -- 2.1 Microelectromechanical system (MEMS) devices -- 2.2 MEMS generators for energy harvesting -- 2.3 MEMS sensor -- 2.3.1 Pressure sensor -- 2.3.2 Healthcare sensor -- 2.3.3 Cell and tisusse regenration -- Conclusion -- Reference -- 7 -- Piezoelectric Thin Films and their Applications -- 1. Piezoelectric thin films -- 2. Lead free piezoelectric thin films -- 2.1 AlN thin films -- 2.2 ZnO thin films -- 2.2.1 Synthesis of ZnO thin films -- 2.3 KNN thin films -- 2.3.1 Synthesis of KNN thin films -- 3. Characterization techniques for piezoelectric thin film -- 3.1 Resonance spectrum method -- 3.2 Pneumatic loading method and normal loading method -- 3.3 Characterizations using capacitance measurements -- 4. Applications -- 4.1 Energy harvesting -- 4.2 Actuators -- 4.3 Electronics -- 4.4 Acoustic biosensors -- 4.5 Surface acoustic wave (SAW) biosensors -- 5. Recent developments in piezoelectric thin film devices -- Conclusion -- References -- 8 -- 1. Perovskites -- 2. Lead free perovskites -- 3. Processing of lead-free perovskites -- 4. Piezoelectricity in lead free perovskite -- 4.1 Fundamentals of piezoelectricity -- 5. Different lead-free piezoceramics and their applications -- 5.1 KNN based ceramics -- 5.2 Bismuth sodium titanate based piezoceramics and their applications -- 5.3 BaTiO3 (BT) based piezo-ceramics -- 5.3.1 BaTiO3 ceramics phase boundary -- 5.3.2 Factors in phase boundaries -- 5.3.3 Sintering and curie temperature -- 5.4 Bismuth based piezoceramics -- 5.4.1 Phase boundary in BFO-based ceramics -- 5.4.1.1 Ion substitution -- 5.4.1.2 Addition of ABO3 -- 5.4.2 Temperature stability of strain properties. 5.4.3 Relationship between piezoelectricity and phase boundaries -- 6. Requirements for piezoceramic applications -- 6.1 Actuators -- 6.2 Sensors -- 6.3 Transducers -- 6.3.1 Piezoelectric transducers -- 6.4 Resonators -- Conclusion -- References -- 9 -- Piezoelectric Materials for Sensor Applications -- 1. Introduction -- 2. Piezoelectric mechanism -- 3. Types of piezoelectric materials -- 4. Fabrication methods -- 5. Applications of piezoelectric materials -- 5.1 Applications in wearable and implanted biomedical devices -- 5.2 Piezoelectric materials for energy applications -- 5.3 Piezoelectric materials in tissue engineering -- 5.4 Piezoelectric materials in other applications -- Conclusion and outlook -- References -- back-matter -- Keyword Index -- About the Editors. |
| Record Nr. | UNINA-9911099131503321 |
Inamuddin
|
||
| Millersville : , : Materials Research Forum LLC, , 2022 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Advanced Functional Piezoelectric Materials and Applications
| Advanced Functional Piezoelectric Materials and Applications |
| Autore | Inamuddin |
| Edizione | [1st ed.] |
| Pubbl/distr/stampa | Millersville : , : Materials Research Forum LLC, , 2022 |
| Descrizione fisica | 1 online resource (290 pages) |
| Collana | Materials Research Foundations |
| Soggetto topico | Piezoelectric materials |
| ISBN | 9781644902097 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto |
Intro -- front-matter -- Table of Contents -- Preface -- 1 -- Types, Properties and Characteristics of Piezoelectric Materials -- 1. Introduction -- 1.1 Single crystals -- 1.2 Ceramics -- 1.3 Composites -- 1.4 Polymers -- 1.5 Sensor configuration based on shape and size -- 1.6 Classification based on dimension -- 2. Properties of piezoelectric materials -- 2.1 Basic equations -- 2.2 Curie temperature -- 2.3 Phase transition -- 2.4 High dielectric constant -- 2.5 Sensitivity -- 2.6 Electromechanical Coupling Factor (k) -- 2.7 Resistivity (R) and time constant (RC) -- 2.7 Quality factors (mechanical and electrical) -- 2.8 Figure of Merit (FOM) and strain coefficient -- 2.9 Piezoelectric resonance frequency -- 2.10 Thermal expansion -- 2.11 Ageing -- 3. Characterization of piezoelectric materials -- 3.1 Measurement of piezoelectric coefficient -- 3.2 Measurement of dielectric constant -- 3.3 Measurement of Curie temperature -- 3.4 Etching and poling -- 3.5 Measurement of hysteresis (PE/SE) loops -- Conclusions -- References -- 2 -- Fabrication Approaches for Piezoelectric Materials -- 1. Introduction -- 2. Preparation techniques for piezoelectric ceramics -- 2.1 Synthesis of ceramic powders -- 2.1 Solid-state reaction -- 2.2 Co-precipitation -- 2.3 Alkoxide hydrolysis -- 2.4 The sintering method -- 2.5 Templated grain growth -- 3. Piezoelectric materials in device fabrication -- 4. Bio-piezoelectric materials -- 4.1 Types bio-piezoelectric materials -- 4.2 Synthesis strategies -- 4.2.1 Thin films -- 4.2.2 Nanoplatforms -- 5. Challenges -- 5.1 Piezoelectric ceramics -- 5.2 Bio-piezoelectric materials -- Conclusion -- References -- 3 -- Piezoelectric Materials-based Nanogenerators -- 1. Introduction -- 2. Piezoelectricity and crystallography -- 3. Maxwell's equations and piezoelectric nanogenerator -- 4. Piezoelectric materials for nanogenerators.
4.1 Ceramic -- 4.1.1 Zinc oxide -- 4.1.2 Barium titanate -- 4.1.3 Lead zirconate titanate (PZT) -- 4.2 Polymer -- 4.2.1 PVDF and its copolymer -- 4.2.2 Polylactic acid -- 4.2.3 Cellulose -- 4.3 Ferroelectret -- 4.4 PVDF based composite -- 4.4.1 Ceramic filler -- 4.4.2 Carbon-based filler -- 4.4.3 Metal based filler -- 4.4.4 Other fillers -- 5. Applications of piezoelectric nanogenerator -- 5.1 Power source of electronic devices -- 5.2 Sensing application -- 6. Challenges and future scopes -- Conclusions -- Acknowledgement -- References -- 4 -- Piezoelectric Materials based Phototronics -- 1. Introduction -- 1.1 Piezoelectric effect -- 1.2 Piezotronic effect -- 2. Piezo-phototronic effect -- 3. Piezoelectric semiconductor NWs -- 4. Effect on 2D materials -- 5. Effect on 3rd generation semiconductors -- 6. Piezo-phototronic effect on LED -- 7. Piezo-phototronic effect on solar cell -- 8. Piezo-phototronics in luminescence applications -- 9. Piezo-phototronics in other applications -- References -- 5 -- Piezoelectric Composites and their Applications -- 1. Introduction -- 2. The mechanism of piezoelectricity and principle of PZT-polymer composites -- 3. Piezoelectric materials -- 4 Applications of piezoelectric composite materials -- 4.1 Energy harvesting applications -- 4.2 Medical applications of piezoelectric materials -- 4.2.1 Piezoelectric medical devices -- 4.2.2 Piezoelectric sensors -- 4.2.3 Piezoelectric prosthetic skin -- 4.2.4 Cochlear implants -- 4.2.5 Piezoelectric surgery -- 4.2.6 Ultrasonic dental scaling -- 4.2.7 Microdosing -- 4.2.8 Energy harvesting -- 4.2.9 Catheter applications -- 4.2.10 Neural stimulators -- 4.2.11 Healthcare monitoring -- 5. Structural health monitoring and repair -- Conclusion -- References -- 6 -- Piezoelectric Materials for Biomedical and Energy Harvesting Applications -- 1. Introduction. 1.1 Types of advance piezoelectric functional materials -- 1.1.1 Polymer piezocomposite -- 1.1.2 Ceramics piezocomposite -- 1.1.3 Polymer ceramics piezocomposite -- 2. Applications -- 2.1 Microelectromechanical system (MEMS) devices -- 2.2 MEMS generators for energy harvesting -- 2.3 MEMS sensor -- 2.3.1 Pressure sensor -- 2.3.2 Healthcare sensor -- 2.3.3 Cell and tisusse regenration -- Conclusion -- Reference -- 7 -- Piezoelectric Thin Films and their Applications -- 1. Piezoelectric thin films -- 2. Lead free piezoelectric thin films -- 2.1 AlN thin films -- 2.2 ZnO thin films -- 2.2.1 Synthesis of ZnO thin films -- 2.3 KNN thin films -- 2.3.1 Synthesis of KNN thin films -- 3. Characterization techniques for piezoelectric thin film -- 3.1 Resonance spectrum method -- 3.2 Pneumatic loading method and normal loading method -- 3.3 Characterizations using capacitance measurements -- 4. Applications -- 4.1 Energy harvesting -- 4.2 Actuators -- 4.3 Electronics -- 4.4 Acoustic biosensors -- 4.5 Surface acoustic wave (SAW) biosensors -- 5. Recent developments in piezoelectric thin film devices -- Conclusion -- References -- 8 -- 1. Perovskites -- 2. Lead free perovskites -- 3. Processing of lead-free perovskites -- 4. Piezoelectricity in lead free perovskite -- 4.1 Fundamentals of piezoelectricity -- 5. Different lead-free piezoceramics and their applications -- 5.1 KNN based ceramics -- 5.2 Bismuth sodium titanate based piezoceramics and their applications -- 5.3 BaTiO3 (BT) based piezo-ceramics -- 5.3.1 BaTiO3 ceramics phase boundary -- 5.3.2 Factors in phase boundaries -- 5.3.3 Sintering and curie temperature -- 5.4 Bismuth based piezoceramics -- 5.4.1 Phase boundary in BFO-based ceramics -- 5.4.1.1 Ion substitution -- 5.4.1.2 Addition of ABO3 -- 5.4.2 Temperature stability of strain properties. 5.4.3 Relationship between piezoelectricity and phase boundaries -- 6. Requirements for piezoceramic applications -- 6.1 Actuators -- 6.2 Sensors -- 6.3 Transducers -- 6.3.1 Piezoelectric transducers -- 6.4 Resonators -- Conclusion -- References -- 9 -- Piezoelectric Materials for Sensor Applications -- 1. Introduction -- 2. Piezoelectric mechanism -- 3. Types of piezoelectric materials -- 4. Fabrication methods -- 5. Applications of piezoelectric materials -- 5.1 Applications in wearable and implanted biomedical devices -- 5.2 Piezoelectric materials for energy applications -- 5.3 Piezoelectric materials in tissue engineering -- 5.4 Piezoelectric materials in other applications -- Conclusion and outlook -- References -- back-matter -- Keyword Index -- About the Editors. |
| Record Nr. | UNINA-9911132952003321 |
Inamuddin
|
||
| Millersville : , : Materials Research Forum LLC, , 2022 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Advanced piezoelectric materials : science and technology / / edited by Kenji Uchino
| Advanced piezoelectric materials : science and technology / / edited by Kenji Uchino |
| Pubbl/distr/stampa | Oxford, : Woodhead Pub., 2010 |
| Descrizione fisica | 1 online resource (697 p.) |
| Disciplina | 620.112972 |
| Altri autori (Persone) | UchinoKenji |
| Collana | Woodhead Publishing Series in Electronic and Optical Materials |
| Soggetto topico | Piezoelectric materials |
| ISBN | 1-84569-975-0 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto | pt. I. Piezoelectric materials -- pt. II. Preparation methods and applications -- pt. III. Application oriented materials development. |
| Record Nr. | UNINA-9911004815703321 |
| Oxford, : Woodhead Pub., 2010 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Advanced piezoelectric materials : science and technology / / edited by Kenji Uchino
| Advanced piezoelectric materials : science and technology / / edited by Kenji Uchino |
| Pubbl/distr/stampa | Woodhead Publishing |
| Soggetto topico | Piezoelectric materials |
| ISBN | 0-08-102135-6 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Altri titoli varianti |
Advanced Piezoelectric Materials - Science and Technology
Advanced Piezoelectric Materials |
| Record Nr. | UNINA-9910583056603321 |
| Woodhead Publishing | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Hybrid Materials for Piezoelectric Energy Harvesting and Conversion
| Hybrid Materials for Piezoelectric Energy Harvesting and Conversion |
| Autore | Ali Wazed |
| Edizione | [1st ed.] |
| Pubbl/distr/stampa | John Wiley & Sons, Ltd |
| Descrizione fisica | 1 online resource (355 pages) |
| Disciplina | 621.381044 |
| Altri autori (Persone) |
BairagiSatyaranjan
Ul-IslamShahid |
| Soggetto topico |
Piezoelectric materials
Energy harvesting |
| ISBN |
9781394150373
1394150377 9781394150359 1394150350 1-394-15037-7 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto |
Cover -- Title Page -- Copyright -- Contents -- List of Contributors -- Preface -- Chapter 1 Introduction to Hybrid Piezoelectric Materials -- 1.1 Introduction -- 1.2 The Concept of Piezoelectricity -- 1.2.1 History of Piezoelectricity -- 1.2.2 The Piezoelectric Effect -- 1.3 Comparison between Piezoelectric Materials -- 1.4 Piezoelectric Material Types -- 1.4.1 Inorganic Piezoelectric Materials -- 1.4.1.1 Single Crystal‐Based Piezoelectric Materials -- 1.4.1.2 Ceramic‐Based Piezoelectric Materials -- 1.4.2 Organic Piezo Materials -- 1.4.2.1 PVDF -- 1.4.2.2 Polylactic Acid (PLA) -- 1.4.3 Hybrid Piezoelectric Materials -- 1.4.3.1 PVDF-PZT systems -- 1.4.3.2 BaTiO3/PVDF -- 1.4.3.3 ZnO-PVDF -- 1.5 Connectivity of Composites Similar in Hybrid Systems -- 1.6 Fabrication and Characterization of Hybrid Piezoelectric Materials -- 1.6.1 Cold‐pressing and Curing‐molding Method -- 1.6.2 Cold Sintering Process -- 1.6.3 Electrospinning (ES) -- 1.6.4 Solvent‐casting Method -- 1.7 Piezoelectric Energy Harvesters (PEHs) System -- 1.7.1 Cantilever Configuration of PEH -- 1.7.2 Circular Diaphragm Configuration of PEH -- 1.7.3 Cymbal Configuration of PEH -- 1.7.4 Stacked Configuration of PEH -- 1.8 Application of Hybrid Materials for Hybrid Energy‐Harvesting Systems -- 1.8.1 Piezoelectric and Electromagnetic Hybrid Systems -- 1.8.2 Piezoelectric-Triboelectric Hybrid Systems -- 1.8.3 Triboelectric, Piezoelectric, and Electromagnetic Hybrid System -- 1.9 Present Development Challenges and Future Perspectives -- 1.10 Conclusion -- References -- Chapter 2 KNN‐Based Hybrid Piezoelectric Materials -- 2.1 Introduction -- 2.2 Lead‐Free Ceramics -- 2.2.1 Inorganic Piezoelectric Ceramics -- 2.3 Potassium Sodium Niobate (KNN): A Piezoelectric Material -- 2.4 Potassium Sodium Niobate (KNN)‐Based Hybrid Piezoelectric Materials -- 2.5 Applications -- 2.6 Conclusion -- References.
Chapter 3 MoS2‐Based Hybrid Piezoelectric Materials -- 3.1 Introduction -- 3.2 Different Methods of MoS2 Synthesis -- 3.2.1 Exfoliation Method -- 3.2.2 Hydrothermal Method -- 3.2.3 CVD Method -- 3.3 MoS2 Working Mechanism -- 3.4 Investigating the Transition of MoS2 Structure from Bulk to Nanostructured Materials -- 3.5 Piezoelectric Energy Harvesting by MoS2 Composites -- 3.6 Conclusions -- References -- Chapter 4 BaTiO3‐Based Hybrid Piezoelectric Materials -- 4.1 Introduction -- 4.2 Structure and Piezoelectric Properties of BaTiO3 Perovskite -- 4.3 Synthesis of Barium Titanate -- 4.4 Barium Titanate‐Based Hybrid Piezoelectric Materials -- 4.4.1 Modified BaTiO3 Crystal Lattice -- 4.4.2 Composite Containing BaTiO3 -- 4.4.3 Piezoelectric Cum Triboelectric Energy Harvester -- 4.5 Applications -- 4.6 Conclusion -- References -- Chapter 5 BNT‐Based Hybrid Piezoelectric Materials -- 5.1 Introduction -- 5.2 Key Limitations of BNT and Ways to Overcome the Limitations -- 5.3 Applicability of BNT‐Based Materials for Piezoelectric Energy Harvesting -- 5.4 BNT/Piezoelectric Polymer‐Based Piezoelectric Energy Harvesters -- 5.5 BNT/Non‐Piezoelectric Polymer‐Based Piezoelectric Energy Harvesters -- 5.6 BNT‐Based Other Mechanical Energy Harvesters -- 5.7 Challenges and Future Scopes -- 5.8 Conclusion -- Acknowledgments -- References -- Chapter 6 ZnSnO3‐Based Hybrid Piezoelectric Materials -- 6.1 Introduction -- 6.2 Synthesis of Zinc Stannate -- 6.2.1 Synthesis of ZTO by Thermal Evaporation -- 6.2.2 Synthesis of ZTO by Chemical Vapor Deposition (CVD) -- 6.2.3 Synthesis of ZTO by Sol-Gel Synthesis -- 6.2.4 Synthesis of ZTO by Coprecipitation -- 6.2.5 Synthesis of ZTO by Hydrothermal Reaction -- 6.2.6 Synthesis of ZTO by Ion‐Exchange Reaction -- 6.2.7 Synthesis of ZTO by Solid‐State Reaction -- 6.2.8 Synthesis of ZTO by Electrospinning. 6.3 Morphologies and Properties of Zinc Stannate -- 6.4 Uses of Zinc Stannate and Hybrids in Piezoelectric Nanogenerators -- 6.5 Conclusion -- Acknowledgments -- References -- Chapter 7 ZnFe2O4‐Based Hybrid Piezoelectric Materials -- 7.1 Introduction -- 7.2 Current Scenario, Challenges in This Field and Scope of the Chapter -- 7.3 Fabrication Strategy of the Nanocomposites -- 7.4 The Controlling Factors of β‐phase Formation in Composites and its Property -- 7.4.1 Effect of Conducting Filler Addition -- 7.5 ZF Nanorod (High Aspect Ratio) and Copolymer PVDF-HFP-Based Nanocomposite -- 7.6 Applications Still Explored and Future Scope -- 7.6.1 Powering Commercial LEDs in Series Connection and Charging Different Capacitors by Single Finger Tapping -- 7.6.2 Energy‐Harvesting Performance from Human Body Movement -- 7.6.3 Energy Harvesting from Ambient Airflow -- 7.6.4 Application as Self‐Powered Pressure Sensor/Height Monitor -- 7.7 Conclusion -- 7.8 Future Direction -- References -- Chapter 8 Conductive Filler‐Based Hybrid Piezoelectric Materials -- 8.1 Introduction -- 8.2 Piezoelectricity: A Brief Overview -- 8.3 Role of Conductive Fillers in Piezoelectric Materials -- 8.4 Conductive Filler‐Based Piezoelectric Materials -- 8.4.1 Carbon‐Based Piezoelectric Materials -- 8.4.2 Metal‐Based Piezoelectric Materials -- 8.4.3 Polymer‐Based Piezoelectric Materials -- 8.4.3.1 PVDF‐Based Polymeric Materials -- 8.4.3.2 Non‐PVDF‐Based Piezoelectric Polymers -- 8.5 Applications -- 8.5.1 Sensing and Actuation -- 8.5.2 Energy Harvesting -- 8.5.3 Structural Health Monitoring -- 8.5.4 Flexible/Wearable Electronics -- 8.5.5 Electromechanical Devices -- 8.6 Summary -- 8.7 Challenges -- References -- Chapter 9 Semiconductive Filler‐Based Hybrid Piezoelectric Materials -- 9.1 Introduction -- 9.2 Piezoelectric Materials. 9.3 Semiconductor‐Modified Hybrid Piezoelectric Materials -- 9.3.1 Semiconductor‐Modified Lead‐Based Hybrid Piezoelectric Materials -- 9.3.2 Semiconductor‐Modified Lead‐Free Hybrid Piezoelectric Materials -- 9.4 Semiconductive Filler‐Based Hybrid Piezoelectric Energy Harvesters -- 9.5 Applications -- 9.6 Conclusion -- References -- Chapter 10 Cellulose‐Based Hybrid Piezoelectric Materials -- 10.1 Introduction -- 10.2 Origin of Piezoelectricity in Cellulose -- 10.3 Different Crystal Structures and Forms of Cellulose -- 10.4 Cellulose‐Based Hybrid Piezoelectric Devices Containing Cellulose as Matrix -- 10.4.1 Molybdenum Disulphide (MoS2) as Filler -- 10.4.2 Barium Titanate (BaTiO3) as Filler -- 10.4.3 Other Fillers and Blends -- 10.5 Cellulose‐Based Hybrid Piezoelectric Devices Containing Cellulose as Filler -- 10.6 Conclusion -- References -- Chapter 11 Collagen‐Based Hybrid Piezoelectric Material -- 11.1 Introduction -- 11.2 Origin of Piezoelectricity in Collagen -- 11.3 Application of Collagen‐based Hybrid Piezoelectric Systems -- 11.4 Collagen‐Based Piezoelectric Nanogenerator -- 11.5 Collagen‐based Supercapacitors -- 11.6 Collagen‐based Sensors -- 11.7 Collagen‐based Memory Devices -- 11.8 Collagen‐based Tissue Engineering Scaffolds -- 11.9 Conclusion and Future Prospects -- References -- Chapter 12 Chitin and Chitosan-Foremost Hybrid Piezoelectric Materials for Energy Harvesting Applications -- 12.1 Introduction -- 12.2 Chitin and its Application as Piezoelectric Material -- 12.3 Chitosan and its Applications as Piezoelectric Materials -- 12.4 Problems -- 12.5 Future Scope -- References -- Index -- EULA. |
| Record Nr. | UNINA-9911019381603321 |
Ali Wazed
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| John Wiley & Sons, Ltd | ||
| Lo trovi qui: Univ. Federico II | ||
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Lead-free piezoelectric materials / / Jing-Feng Li
| Lead-free piezoelectric materials / / Jing-Feng Li |
| Autore | Li Jing-Feng |
| Pubbl/distr/stampa | Weinheim, Germany : , : Wiley-VCH, , [2021] |
| Descrizione fisica | 1 online resource (242 pages) |
| Disciplina | 537.2446 |
| Soggetto topico | Piezoelectric materials |
| Soggetto genere / forma | Electronic books. |
| ISBN |
3-527-81705-0
3-527-81704-2 3-527-81707-7 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Record Nr. | UNINA-9910555061503321 |
Li Jing-Feng
|
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| Weinheim, Germany : , : Wiley-VCH, , [2021] | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Lead-free piezoelectric materials / / Jing-Feng Li
| Lead-free piezoelectric materials / / Jing-Feng Li |
| Autore | Li Jing-Feng |
| Pubbl/distr/stampa | Weinheim, Germany : , : Wiley-VCH, , [2021] |
| Descrizione fisica | 1 online resource (242 pages) |
| Disciplina | 537.2446 |
| Soggetto topico | Piezoelectric materials |
| ISBN |
3-527-81705-0
3-527-81704-2 3-527-81707-7 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Record Nr. | UNINA-9910829925003321 |
Li Jing-Feng
|
||
| Weinheim, Germany : , : Wiley-VCH, , [2021] | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Modelling of multilayered piezoelectric composites [[electronic resource] /] / Claire David
| Modelling of multilayered piezoelectric composites [[electronic resource] /] / Claire David |
| Autore | David Claire <1971-> |
| Pubbl/distr/stampa | New York, : Nova Science Publishers, c2008 |
| Descrizione fisica | 1 online resource (85 p.) |
| Disciplina | 537/.2446 |
| Collana | Novinka |
| Soggetto topico |
Piezoelectric materials
Composite materials - Mathematical models |
| Soggetto genere / forma | Electronic books. |
| ISBN | 1-61470-329-9 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Record Nr. | UNINA-9910457671003321 |
David Claire <1971->
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||
| New York, : Nova Science Publishers, c2008 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||