Interfacial Processes for Efficient Energy Conversion
Editat de Kohei Uosaki, Kazutaka Mitsuishien Limba Engleză Paperback – 5 noi 2026
In this resulting book the reader will find comprehensive descriptions of all solid-state batteries, lithium–air batteries, fuel cells, and perovskite solar cells. Also included is coverage of fundamental research on novel electrocatalysts, the development of new measurement methods, and computational approaches to characterize solid–liquid and solid–solid interfaces.
This comprehensive volume summarizes the research achievements of GREEN to mark the milestones in those research fields, creating an ideal reference source for researchers, professionals, and graduate students in the fields of environmental and energy materials sciences. As well, it provides computational and characterization techniques specific to those materials.
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Specificații
Notă biografică
Kohei Uosaki received his Ph.D. from Flinders University of South Australia in 1977. He is currently Principal Fellow of the Center for Research and Development Strategy (CRDS), Japan Science and Technology Agency (JST), Emeritus Fellow of the National Institute for Materials Science and Professor Emeritus of Hokkaido University, where he taught for 30 years in the Department of Chemistry. His research interests include surface physical chemistry, electrochemical surface science, and electrochemical energy conversion. He is the author of the books Fundamental Electrochemistry (in Japanese), Molecular Nanodynamics, and Electrochemical Science for a Sustainable Society: A Tribute to John O’M. Bockris. In addition, he has published more than 450 original papers in internationally renowned journals such as Nature, Science, Journal of American Chemical Society, and Angewandte Chemie, and he has contributed to more than 50 books. The awards and honors he has received include the Chemical Society of Japan Award, the Society Award of the Surface Science Society of Japan, and the Distinguished Alumni Award and the honorary degree of Doctor of Science from Flinders University. He is a fellow of the Royal Society of Chemistry, the International Society of Electrochemistry, the Electrochemical Society, and the Chemical Society of Japan. He has served as associate editor of the Bulletin of the Chemical Society of Japan and regional editor, Asia-Pacific, of Electrochemistry Communications, where he is an editorial board member. He has also served as an editorial board member of the Journal of Electroanalytical Chemistry and a member of the International Advisory Editorial Board of Physical Chemistry and Chemical Physics. He was Director of GREEN (2013-2018) and Program Officer of a MEXT project on “Specially Promoted Research on Innovative Next-Generation Batteries, Advanced Low-Carbon Technology” R & D Program (ALCA-SPRING) (2013-2022), and is now leading Green Technology Excellence (GteX) and ALCA-Next projects supported by MEXT/JST as Program Director since 2023.
Kazutaka Mitsuishi received his Ph.D. from the Tokyo University of Science in 1996. His research interests include electron microscopy, electron diffraction-related techniques, and characterization of all-solid Li ion batteries. He is currently a group leader of the In-situ Characterization Technique Development Group at the National Institute for Materials Science. He is the author of chapters of the books Nanofabrication: Fundamentals and Applications, Nanofabrication Using Focused Ion and Electron Beams, and Scanning Transmission Electron Microscopy of Nanomaterials: Basics of Imaging and Analysis, and he has published more than 230 original papers in internationally renowned journals such as Science, Physical Review Letters, and Applied Physics Letters. He received an Incentive Award from the Japanese Society of Microscopy and has served as an editorial board member of Microscopy.
Kazutaka Mitsuishi received his Ph.D. from the Tokyo University of Science in 1996. His research interests include electron microscopy, electron diffraction-related techniques, and characterization of all-solid Li ion batteries. He is currently a group leader of the In-situ Characterization Technique Development Group at the National Institute for Materials Science. He is the author of chapters of the books Nanofabrication: Fundamentals and Applications, Nanofabrication Using Focused Ion and Electron Beams, and Scanning Transmission Electron Microscopy of Nanomaterials: Basics of Imaging and Analysis, and he has published more than 230 original papers in internationally renowned journals such as Science, Physical Review Letters, and Applied Physics Letters. He received an Incentive Award from the Japanese Society of Microscopy and has served as an editorial board member of Microscopy.
Cuprins
Perovskite Solar Cells.- Interfacial Issues in Solid-State Battery.- Changes in the lithium concentration around interfaces in an all-solid-state battery analyzed by combined ion-beam analysis.- All solid state batteries: Transmission Electron Microscopy for interface analysis.- Dynamic potential measurements on operating all-solid-state Li-ion battery using Kelvin probe force microscopy.- Lithium-Ion Diffusion in Battery Materials Studied by Tracer Method and Pulsed-Field Gradient NMR.- Exploration of Solid Electrolyte Materials for Use in Storage Batteries Using Data Science.- Development of lithium–air batteries.- Theory Driven Development of Novel Electrocatalysts for Oxygen Reduction and Hydrogen Evolution Reactions.- Bio-inspired Electrocatalysis for Oxygen Reduction Reaction.- Towards efficient designing of heterogenous electrocatalysts: control of internal electron transfer in catalyst-modified electrodes.- Crosslinked Sufonated Polyphenylsulfone (CSPPSU) Hydrocarbon Membranes for Polymer Electrolyte Fuel Cells (PEFCs).- In situ micro-observation of electrode–electrolyte interfaces in solid oxide fuel cells by transmission electron microscopy.- In Situ Characterization of Electrochemical Processes at Solid/liquid Inter-faces.- In situ transmission electron microscopy observation using environmental specimen holders.- Novel characterization technique for electrocatalytic surface by using potential-dependent IR/visible double-resonance sum frequency generation spectroscopy (DR-SFG).- Computational Study on Battery Materials.- Towards accurate first-principles simulations of surfaces and interfaces.- Technology Integration for Social Implementation.