Focuses on the combination of theory and experiment to study the shut-in problem in solid-state batteries.
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Junhua Hu is Professor and Deputy Director for the expert committee of China Energy Society, Academic Leadership of Henan Education Department, and works in School of Materials Science and Engineering, Zhengzhou University (China). His research interests include Nanoscience; Surface Science; Electrocatalysis; Solid state energy storage devices; Metal-air batteries.
Hongjie Xu is currently Associate Professor in the School of Materials, North China University of Water Resources and Electric Power, China. Her main research interest is the new energy materials and devices, computational material simulation, mainly including the research of key materials for lithium metal and sodium metal batteries.
Jinjin Ban is Associate Professor at the school of Materials Science and Engineering, Zhengzhou University, China. Her research interest is the design of new energy materials and devices application, mainly including metal air battery, hydrogen fuel cell, electrolysis water device, super capacitor.
Fanfan Liu is currently a postdoctoral fellow at the School of Materials Science and Engineering, Zhengzhou University, China. Her main research interests include new energy materials and devices, micro/nano science and technology, design of two-dimensional transition metal carbide (MXene)-based nanomaterials and their applications in electrochemical energy storage.
Shilin Zhang is a lecturer in the School of Materials Science and Engineering at Zhengzhou University, China. His research interests include mineral material processing and application, lithium sulfur battery, lithium metal battery, new adsorption functional materials.
High-throughput computational design of key solid-state battery materials
Solid-state batteries promise higher energy density and safety than conventional liquid-electrolyte systems, yet designing their key materials remains a significant challenge. Materials Modeling for High Performance Solid-State Batteries, authored by a team of materials scientists and electrochemists at leading Chinese research universities, applies high-throughput first-principles calculation and simulation methods to the systematic design of electrode, electrolyte, and interface materials.
The book covers material design for lithium batteries and magnesium ion batteries through computational approaches, analyzing interface problems and surface modification strategies. It details preparation methods for key battery components, electrochemical test methods, and advanced characterization techniques. Full battery assembly technology and industrial process considerations are addressed alongside the latest improvement strategies and internal mechanism analysis for solid-state systems.
The book also covers:
Materials scientists, electrochemists, physical chemists, and engineering scientists working in energy storage or the automobile industry will find this volume a focused resource connecting computational materials design with practical solid-state battery development, from first-principles screening through full device assembly.
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Anbieter: AHA-BUCH GmbH, Einbeck, Deutschland
Buch. Zustand: Neu. Neuware - High-throughput computational design of key solid-state battery materials Solid-state batteries promise higher energy density and safety than conventional liquid-electrolyte systems, yet designing their key materials remains a significant challenge. Materials Modeling for High Performance Solid-State Batteries, authored by a team of materials scientists and electrochemists at leading Chinese research universities, applies high-throughput first-principles calculation and simulation methods to the systematic design of electrode, electrolyte, and interface materials. The book covers material design for lithium batteries and magnesium ion batteries through computational approaches, analyzing interface problems and surface modification strategies. It details preparation methods for key battery components, electrochemical test methods, and advanced characterization techniques. Full battery assembly technology and industrial process considerations are addressed alongside the latest improvement strategies and internal mechanism analysis for solid-state systems. The book also covers: High-throughput first-principles calculation methods applied to the screening and design of cathode, anode, and electrolyte materials Interface engineering strategies addressing dendrite suppression and solid-solid contact challenges in lithium and magnesium ion battery systems Surface and interface modification approaches for improving ionic conductivity and electrochemical stability in solid electrolytes Assembly technology and industrial process parameters for translating laboratory-scale solid-state battery designs into practical devices Advanced characterization methods and electrochemical testing protocols used to evaluate solid-state battery material performance and degradation Materials scientists, electrochemists, physical chemists, and engineering scientists working in energy storage or the automobile industry will find this volume a focused resource connecting computational materials design with practical solid-state battery development, from first-principles screening through full device assembly. Artikel-Nr. 9783527354771
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Anbieter: preigu, Osnabrück, Deutschland
Buch. Zustand: Neu. Materials Modeling for High-Performance Solid-State Batteries | Junhua Hu (u. a.) | Buch | 272 S. | Englisch | 2026 | Wiley-VCH GmbH | EAN 9783527354771 | Verantwortliche Person für die EU: Wiley-VCH GmbH, Boschstr. 12, 69469 Weinheim, product-safety[at]wiley[dot]com | Anbieter: preigu. Artikel-Nr. 136449812
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