This book provides detailed descriptions of strategies for improving ion conductivity and the factors that result in high ion conductivity.

In this book, discovery of novel materials that exhibit higher ion conductivity than practical materials is introduced to clarify the migration mechanism of oxide ions and protons.

The book shows that the bulk conductivity of hexagonal perovskite-related oxide Ba7Nb3.8Mo1.2O20.1 in dry air is 1.1 mS/cm at 306 °C, which is 175 times higher than that of practical materials (ZrO2)0.92(Y2O3)0.08 (8YSZ). Also, as a new approach to the subject, by ab initio molecular dynamics (AIMD) simulations and neutron-diffraction experiments, the mechanism is shown that the oxide ions migrate by the breaking and reforming of M2O9 (M = Nb, Mo) dimers, MO5 monomers and MO4 tetrahedra. The oxide-ion migration is reminiscent of a concerted push-pull interstitialcy ‘bucket-relay’-type motions. Readers can understand the oxide-ion and proton migration mechanism in terms of crystal structure.

Recently, materials that exhibit high ionic conductivity have been discovered one after another.

Les mer

Introduction.- Improvement of oxide-ion conductivity and suppression of proton conduction by Cr6+ doping in Ba7Nb4MoO20-based materials.- Dimer mediated cooperative mechanism of ultrafast-ion conduction in hexagonal perovskite-related oxides.- Summary.

Les mer

This book provides detailed descriptions of strategies for improving ion conductivity and the factors that result in high ion conductivity.

In this book, discovery of novel materials that exhibit higher ion conductivity than practical materials is introduced to clarify the migration mechanism of oxide ions and protons.

The book shows that the bulk conductivity of hexagonal perovskite-related oxide Ba7Nb3.8Mo1.2O20.1 in dry air is 1.1 mS/cm at 306 °C, which is 175 times higher than that of practical materials (ZrO2)0.92(Y2O3)0.08 (8YSZ). Also, as a new approach to the subject, by ab initio molecular dynamics (AIMD) simulations and neutron-diffraction experiments, the mechanism is shown that the oxide ions migrate by the breaking and reforming of M2O9 (M = Nb, Mo) dimers, MO5 monomers and MO4 tetrahedra. The oxide-ion migration is reminiscent of a concerted push-pull interstitialcy ‘bucket-relay’-type motions. Readers can understand the oxide-ion and proton migration mechanism in terms of crystal structure.

Recently, materials that exhibit high ionic conductivity have been discovered one after another.

Les mer
Shows the mechanism of ion migration considered through combination of experiments and calculations Discusses a number of experimental techniques and results shown to provide evidence of ion conductivity Gives strategies for improving ion conductivity can be understood
Les mer
GPSR Compliance The European Union's (EU) General Product Safety Regulation (GPSR) is a set of rules that requires consumer products to be safe and our obligations to ensure this. If you have any concerns about our products you can contact us on ProductSafety@springernature.com. In case Publisher is established outside the EU, the EU authorized representative is: Springer Nature Customer Service Center GmbH Europaplatz 3 69115 Heidelberg, Germany ProductSafety@springernature.com
Les mer

Produktdetaljer

ISBN
9789819625512
Publisert
2025-03-27
Utgiver
Vendor
Springer Nature Switzerland AG
Høyde
235 mm
Bredde
155 mm
Aldersnivå
Research, P, 06
Språk
Product language
Engelsk
Format
Product format
Innbundet

Forfatter

Om bidragsyterne

Yuichi Sakuda is a specially appointed assistant professor at Tokyo Institute of Technology. He received his Bachelor of Science, Master of Science and Doctor of Science from Tokyo Institute of Technology in 2019, 2021 and 2024, respectively. He received Seiichi Tejima Research Award in 2024.