9783527355587 - high-entropy materials for energy storage devices (18 risultati)

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Buch. Condizione: Neu. Neuware -Highlights the concept of various high entropy materials and their applications on electrochemical energy storage devices especially for battery and supercapacitor applications. 480 pp. Englisch.

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Buch. Condizione: Neu. Neuware -Highlights the concept of various high entropy materials and their applications on electrochemical energy storage devices especially for battery and supercapacitor applications. 480 pp. Englisch.

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Buch. Condizione: Neu. Neuware -Provides a state-of-the-art overview of the high-entropy materials driving next-generation energy storage and conversion technologies.

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Buch. Condizione: Neu. High-Entropy Materials for Energy Storage Devices | Chien-Te Hsieh (u. a.) | Buch | 480 S. | Englisch | 2026 | Wiley-VCH GmbH | EAN 9783527355587 | Verantwortliche Person für die EU: Wiley-VCH GmbH, Boschstr. 12, 69469 Weinheim, product-safety[at]wiley[dot]com | Anbieter: preigu.

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Buch. Condizione: Neu. Neuware -Provides a state-of-the-art overview of the high-entropy materials driving next-generation energy storage and conversion technologiesWiley-VCH GmbH, Boschstraße 12, 69469 Weinheim 480 pp. Englisch.

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Buch. Condizione: Neu. Neuware - Highlights the concept of various high entropy materials and their applications on electrochemical energy storage devices especially for battery and supercapacitor applications.

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Buch. Condizione: Neu. Neuware -Provides a state-of-the-art overview of the high-entropy materials driving next-generation energy storage and conversion technologies 480 pp. Englisch.

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Hardcover. Condizione: new. Hardcover. Provides a state-of-the-art overview of the high-entropy materials driving next-generation energy storage and conversion technologies The development of high-entropy materials (HEMs) represents one of the most significant innovations in materials science for energy storage technologies. Tra…ditional electrode and catalyst materials are constrained by performance, cost, and stability challenges, limiting the growth and reliability of renewable energy solutions. By contrast, HEMsowing to their unique structural diversity, tunable composition, and robust stabilityoffer a paradigm-shifting pathway to advance batteries, capacitors, fuel cells, and hydrogen storage. High-Entropy Materials for Energy Storage Devices is the first comprehensive treatment of this field, bridging fundamental theory with device-oriented application. This authoritative volume introduces the conceptual foundations of high-entropy alloys and oxides, alongside emerging classes of perovskite-based, 2D-functional, metal-free, and morphology-dependent materials. Advanced synthesis and characterization methods are explained in detail, equipping researchers and engineers with the tools to tailor materials for electrochemical performance. Individual chapters address key topics such as electro-kinetics, surface chemistry, industrial perspectives, and future research challenges. Practical applications are emphasized through coverage of batteries, supercapacitors, and dielectric capacitors, supported by case studies that demonstrate the transformative role of HEMs in next-generation energy systems. Uniting fundamental principles with applied engineering perspectives to accelerate progress in addressing global energy storage needs, High-Entropy Materials for Energy Storage Devices: Provides detailed coverage of electro-kinetics and surface chemistry in high-entropy systems Integrates industrial perspectives, highlighting scalability, cost considerations, and commercialization potential Features case studies linking material properties with real-world device performance outcomes Explores both noble metal-based and noble metal-free material systems Offers comparative insights into alloys, oxides, and morphology-dependent high-entropy materials Discusses future challenges, emerging directions, and prospects for innovation High-Entropy Materials for Energy Storage Devices is an essential resource for graduate students, researchers, and professionals in materials science, electrochemistry, and chemical engineering. It is particularly suited for advanced courses on energy materials, electrochemical energy storage, and materials for renewable energy systems within M.Sc., Ph.D., and engineering degree programs. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.

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Hardcover. Condizione: new. Hardcover. Provides a state-of-the-art overview of the high-entropy materials driving next-generation energy storage and conversion technologies The development of high-entropy materials (HEMs) represents one of the most significant innovations in materials science for energy storage technologies. Tra…ditional electrode and catalyst materials are constrained by performance, cost, and stability challenges, limiting the growth and reliability of renewable energy solutions. By contrast, HEMsowing to their unique structural diversity, tunable composition, and robust stabilityoffer a paradigm-shifting pathway to advance batteries, capacitors, fuel cells, and hydrogen storage. High-Entropy Materials for Energy Storage Devices is the first comprehensive treatment of this field, bridging fundamental theory with device-oriented application. This authoritative volume introduces the conceptual foundations of high-entropy alloys and oxides, alongside emerging classes of perovskite-based, 2D-functional, metal-free, and morphology-dependent materials. Advanced synthesis and characterization methods are explained in detail, equipping researchers and engineers with the tools to tailor materials for electrochemical performance. Individual chapters address key topics such as electro-kinetics, surface chemistry, industrial perspectives, and future research challenges. Practical applications are emphasized through coverage of batteries, supercapacitors, and dielectric capacitors, supported by case studies that demonstrate the transformative role of HEMs in next-generation energy systems. Uniting fundamental principles with applied engineering perspectives to accelerate progress in addressing global energy storage needs, High-Entropy Materials for Energy Storage Devices: Provides detailed coverage of electro-kinetics and surface chemistry in high-entropy systems Integrates industrial perspectives, highlighting scalability, cost considerations, and commercialization potential Features case studies linking material properties with real-world device performance outcomes Explores both noble metal-based and noble metal-free material systems Offers comparative insights into alloys, oxides, and morphology-dependent high-entropy materials Discusses future challenges, emerging directions, and prospects for innovation High-Entropy Materials for Energy Storage Devices is an essential resource for graduate students, researchers, and professionals in materials science, electrochemistry, and chemical engineering. It is particularly suited for advanced courses on energy materials, electrochemical energy storage, and materials for renewable energy systems within M.Sc., Ph.D., and engineering degree programs. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.

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Da: AussieBookSeller, Truganina, VIC, AustraliaAussieBookSeller
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Hardcover. Condizione: new. Hardcover. Provides a state-of-the-art overview of the high-entropy materials driving next-generation energy storage and conversion technologies The development of high-entropy materials (HEMs) represents one of the most significant innovations in materials science for energy storage technologies. Tra…ditional electrode and catalyst materials are constrained by performance, cost, and stability challenges, limiting the growth and reliability of renewable energy solutions. By contrast, HEMsowing to their unique structural diversity, tunable composition, and robust stabilityoffer a paradigm-shifting pathway to advance batteries, capacitors, fuel cells, and hydrogen storage. High-Entropy Materials for Energy Storage Devices is the first comprehensive treatment of this field, bridging fundamental theory with device-oriented application. This authoritative volume introduces the conceptual foundations of high-entropy alloys and oxides, alongside emerging classes of perovskite-based, 2D-functional, metal-free, and morphology-dependent materials. Advanced synthesis and characterization methods are explained in detail, equipping researchers and engineers with the tools to tailor materials for electrochemical performance. Individual chapters address key topics such as electro-kinetics, surface chemistry, industrial perspectives, and future research challenges. Practical applications are emphasized through coverage of batteries, supercapacitors, and dielectric capacitors, supported by case studies that demonstrate the transformative role of HEMs in next-generation energy systems. Uniting fundamental principles with applied engineering perspectives to accelerate progress in addressing global energy storage needs, High-Entropy Materials for Energy Storage Devices: Provides detailed coverage of electro-kinetics and surface chemistry in high-entropy systems Integrates industrial perspectives, highlighting scalability, cost considerations, and commercialization potential Features case studies linking material properties with real-world device performance outcomes Explores both noble metal-based and noble metal-free material systems Offers comparative insights into alloys, oxides, and morphology-dependent high-entropy materials Discusses future challenges, emerging directions, and prospects for innovation High-Entropy Materials for Energy Storage Devices is an essential resource for graduate students, researchers, and professionals in materials science, electrochemistry, and chemical engineering. It is particularly suited for advanced courses on energy materials, electrochemical energy storage, and materials for renewable energy systems within M.Sc., Ph.D., and engineering degree programs. This item is printed on demand. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.