Kimura / Cheng / Jia | Nanoscale Ferroelectric-Multiferroic Materials for Energy Harvesting Applications | Buch | 978-0-12-814499-2 | sack.de

Buch, Englisch, 252 Seiten, Format (B × H): 228 mm x 153 mm, Gewicht: 420 g

Reihe: Micro & Nano Technologies

Kimura / Cheng / Jia

Nanoscale Ferroelectric-Multiferroic Materials for Energy Harvesting Applications

Buch, Englisch, 252 Seiten, Format (B × H): 228 mm x 153 mm, Gewicht: 420 g

Reihe: Micro & Nano Technologies

ISBN: 978-0-12-814499-2
Verlag: Elsevier Science Publishing Co Inc


Nanoscale Ferroelectric-Multiferroic Materials for Energy Harvesting Applications presents the latest information in the emerging field of multiferroic materials research, exploring applications in energy conversion and harvesting at the nanoscale. The book covers crystal and microstructure, ferroelectric, piezoelectric and multiferroic physical properties, along with their characterization. Special attention is given to the design and tailoring of ferroelectric, magnetic and multiferroic materials and their interaction among ferroics. The fundamentals of energy conversion are incorporated, along with the requirements of materials for this process. Finally, a range of applications is presented, demonstrating the progression from fundamentals to applied science.

This essential resource describes the link between the basic physical properties of these materials and their applications in the field of energy harvest. It will be a useful resource for graduate students, early career researchers, academics and industry professionals working in areas related to energy conversion.
Kimura / Cheng / Jia Nanoscale Ferroelectric-Multiferroic Materials for Energy Harvesting Applications jetzt bestellen!

Zielgruppe


<p>Graduate students, researchers in academia and industry working in areas related to energy conversion</p>

Weitere Infos & Material


1. Domain switching in bismuth layer-structured multiferroic film 2. Strain tuning effects in perovskites 3. Aurivillius layer-structured multiferroic materials 4. Fabrication of (K, Na)NbO3 films by pulsed laser deposition and their domain observation 5. Microscale materials design using focused proton-beam writing 6. Thin film fabrication using nanoscale flat substrates 7. Ferroic domain observation using transmission electron microscope 8. First-principles study of the ferroelectric phase of AgNbO3 9. Structural optimization of piezoelectric thin-film vibration energy harvesters based on electric equivalent circuit model 10. Ferroelectric nanofibers and their application in energy harvesting 11. Microenergy harvesting using BiFeO3 films 12. Thermal energy harvesting of PLZT and BaTiO3 ceramics using pyroelectric effects


Jia, Tingting
Tingting Jia is a postdoctoral researcher in the Multifunctional Materials Group, Optical and Electronic Materials Unit, National Institute for Materials Science, Tsukuba, Japan. Her research focuses on multiferroic thin films, high-k gate dielectrics, and nonpolar wide gap semiconductor films and substrate. She has co-authored over 50 articles and conference proceedings, and has 10 patents.

Cheng, Zhenxiang
Zhenxiang Cheng is Associate Professor at the Institute for Superconducting and Electronic Materials, University of Wollongong, NSW, Australia, and a Future Fellow of the Australian Research Council. His research interests include dielectric, ferroelectric and multiferroic, materials and physics, magnetism and spintronics.

Kimura, Hideo
Hideo Kimura is Leader of the Magnetoelectric Crystal Group, National Institute for Materials Science, Tsukuba, Japan. His research focuses on antiferromagnetic oxide single crystals for magnetic refrigeration, nonlinear optical single crystals, microgravity science, piezoelectric and ferroelectric crystals, and multiferroic thin films. In the past five years he has co-authored 29 papers and four books.


Ihre Fragen, Wünsche oder Anmerkungen
Vorname*
Nachname*
Ihre E-Mail-Adresse*
Kundennr.
Ihre Nachricht*
Lediglich mit * gekennzeichnete Felder sind Pflichtfelder.
Wenn Sie die im Kontaktformular eingegebenen Daten durch Klick auf den nachfolgenden Button übersenden, erklären Sie sich damit einverstanden, dass wir Ihr Angaben für die Beantwortung Ihrer Anfrage verwenden. Selbstverständlich werden Ihre Daten vertraulich behandelt und nicht an Dritte weitergegeben. Sie können der Verwendung Ihrer Daten jederzeit widersprechen. Das Datenhandling bei Sack Fachmedien erklären wir Ihnen in unserer Datenschutzerklärung.