
Hybrid Perovskites
Synthesis, Properties, and Applications
by Ajay Singh Verma, Mohd Yusuf
1st Edition
Publisher: Wiley-Scrivener
Book Details
| Print ISBN | 9781119864974 |
| eText ISBN | 9781119865285 |
| Publisher | Wiley-Scrivener |
| Publishing Year | 2026 |
| Edition | 1st Edition |
| Language | English |
| Pages | 304 |
The 1st Edition of Hybrid Perovskites: Synthesis, Properties, and Applications provides detailed coverage of fundamental optoelectronic properties in hybrid perovskite semiconductor materials. The volume explains solution-based processing technology and specialized inkjet technology aimed at large-area solar cell device fabrication.
Coverage extends across diverse optoelectronic and computational platforms. The text outlines applications in quantum computing platforms, neuromorphic devices, radiation scintillators, light-emitting diodes, and lasing technologies to demonstrate the operational scope of these structures.
Published by Wiley-Scrivener in 2026, this text supports researchers, academicians, practicing scientists, and advanced students in materials science, physics, chemistry, and engineering. It connects basic physical principles with practical device design across emerging energy and optoelectronic fields.
Table of Contents
Chapter 1: Insights into Hybrid Perovskite Materials
- • 1.1 Introduction
- • 1.2 Fabrication Strategies
- • 1.3 Applications of Perovskite Materials
- • 1.4 Conclusion and Future Outlook
Chapter 2: Hybrid Halide Double Perovskites and Their Future Aspects
- • 2.1 Introduction
- • 2.2 Alternatives to Si Solar Cells: Perovskite-Structured Solar Cells (PSCs)
- • 2.3 Summary and Perspective
Chapter 3: Stabilities of Hybrid Perovskite Crystals and Photovoltaics
- • 3.1 Introduction
- • 3.2 Flexibility of Crystals
- • 3.3 Degradation Mechanism of Perovskite Halides
- • 3.4 Stabilization by Structural Control of Crystals: Co-Substitution of Alkali Elements and Cu
- • 3.5 Stabilization by Co-Substitution of Organic Molecules and Cu
- • 3.6 Stabilization of FA0.83Cs0.17PbI3 by Ge Addition
- • 3.7 Possible Stabilization of FAPbI3 by Cu Substitution
- • 3.8 Co-Additive Effects of EA and GA
- • 3.9 Stabilization by Highly (100)-Oriented Thin Films
- • 3.10 Surface Modification Stabilization by DPPS
- • 3.11 Summary
Chapter 4: Hybrid Perovskites in Flexible Electronics and Wearable Devices
- • 4.1 Introduction
- • 4.2 Preparation Methods
- • 4.3 Applications of Hybrid Perovskites in Flexible Electronics and Wearable Devices
- • 4.4 Challenges and Future Prospects
- • 4.5 Conclusion
Chapter 5: Organometallic Halide Perovskites: Futuristic Materials for a More Efficient and Sustainable Electronic World
- • 5.1 An Introduction: Renewable Energy and PVs
- • 5.2 PVs' Production Technologies
- • 5.3 Organic PV Technology
- • 5.4 Perovskite Material: Origin and its History
- • 5.5 Semiconducting Perovskite: Parameters Affecting Optoelectronic Properties
- • 5.6 Perovskite Materials for PSC Fabrication
- • 5.7 Optoelectronic Applications of Halide Perovskites
- • 5.8 Summary and Conclusions
Chapter 6: Greening Solar Energy: Harnessing Nontoxic Hybrid Perovskites for Sustainable Photovoltaics
- • 6.1 Solar Energy Cell Working
- • 6.2 Environmental Concerns with Traditional Solar Cell Materials
- • 6.3 Environmental Challenges Associated with Traditional Materials, Including Resource Depletion and Hazardous Waste
- • 6.4 Introduction to Perovskite Materials and their Relevance in Photovoltaics
- • 6.5 Nontoxic and Less Toxic Hybrid Perovskites: A Green Solution
- • 6.6 Composition and Structure of Hybrid Perovskites
- • 6.7 Hybrid Perovskite Properties Attractive for Solar Cells
- • 6.8 Advantages of Nontoxic Hybrid Perovskites in Terms of Environmental Impact
- • 6.9 Environmental Impact Assessment
- • 6.10 Implications for Sustainability and Green Energy Transition
- • 6.11 Commercialization and Market Potential
- • 6.12 Current Status of Nontoxic Hybrid Perovskite Solar Cell Commercialization
- • 6.13 Economic and Policy Considerations for Promoting Sustainable Photovoltaic Technologies
- • 6.14 Challenges and Research Directions
- • 6.15 Ongoing Research Efforts to Address these Challenges
- • 6.16 Future Prospects and Potential Breakthroughs in the Field
- • 6.17 Conclusion
Chapter 7: Thin Films for Planar Solar Cells of Organic-Inorganic Perovskite Composites
- • 7.1 Introduction
- • 7.2 Solar Cell Composites Based on Perovskites
- • 7.3 Materials Design of Perovskite Composites
- • 7.4 Techniques of Thin-Film Fabrication
- • 7.5 Planar Configurations of Solar Cells Using Perovskite Composites
- • 7.6 Photovoltaic Performance Metrics
- • 7.7 Challenges in Perovskite Composite Thin Films
- • 7.8 Emerging Trends and Applications
- • 7.9 Summary
Chapter 8: Efficacy of Porphyrin-Based Supramolecular Structures in Organic-Inorganic Hybrid Perovskite Solar Cells (OIHPSCs)
- • 8.1 Introduction
- • 8.2 Impact of Porphyrin-Based Supramolecular Structural Framework as an Additive in PSC Film
- • 8.3 Importance of Porphyrin-Based Supramolecular Structural Framework as Hole-Transport Materials or Layers (HTL/HTM) in PSCs
- • 8.4 Utility of Porphyrin-Based Supramolecular Structural Framework as Electron-Transport Materials or Layers (ETM or ETL) in PSCs
- • 8.5 Significance of Porphyrin-Based Supramolecular Structural Framework as a Bulk Heterojunction (BHJ) Layer in PSCs
- • 8.6 Conclusion and Summary of the Porphyrin-Based Supramolecular Structural Framework
Chapter 9: Detection and Purification of Toxic Materials: Advancements, Perovskite, and MXene-Based Approaches
- • 9.1 Introduction
- • 9.2 Traditional Methods of Detoxification
- • 9.3 Current Detoxification Technologies
- • 9.4 Role of Perovskite and MXenes in Developing Future Detoxification Technologies
- • 9.5 Challenges and Prospects
- • 9.6 Conclusion
Chapter 10: Power Conversion Efficiency and Physical Properties of Chalcogenide Perovskite Solar Cells
- • 10.1 Introduction
- • 10.2 Perovskite Materials: Structural Characteristics
- • 10.3 Theoretical Description
- • 10.4 Computational Details
- • 10.5 Conclusion and Future Aspects
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- Hybrid perovskites for photovoltaics: Insights from first principles
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