Shantanu Bhattacharya, Avinash Kumar Agarwal, T. Rajagopalan, Vinay K. Patel, editors.
Singapore :
Springer,
[2019]
1 online resource
Energy, environment, and sustainability,
2522-8374
Includes bibliographical references.
Intro; Preface; Contents; Editors and Contributors; Nano-energetic Materials: The Current Paradigm; 1 Introduction to Nano-energetic Materials; Abstract; 2 Aluminum-Based Nano-energetic Materials: State of the Art and Future Perspectives; Abstract; 2.1 Introduction; 2.2 Oxidation Mechanism; 2.3 Micron- Versus Nano-Aluminum; 2.4 Surface Passivation Efforts; 2.5 Self-assembled Nano-energetic Composites; 2.6 Energetic Liquids; 2.7 Perspectives; References; 3 Nanostructured Energetic Composites: An Emerging Paradigm; Abstract; 3.1 Introduction; 3.2 Synthesis of Nanothermites.
3.2.1 Nanofuel Synthesis Using Bottom-Up Approach3.2.1.1 Technique Using Nano-Al; 3.2.1.2 (a) Synthesis by Mixing; 3.2.1.3 (b) Synthesis by Self-Assembly; 3.2.1.4 Deposition Technique; 3.2.1.5 Arrested Reactive Milling (ARM); 3.3 Properties of Nanothermites; 3.4 Types of Nanothermites; 3.5 Applications of Nanothermites; 3.6 Conclusion; References; 4 Nano-energetic Materials for Defense Application; Abstract; 4.1 Introduction to Energetic Materials; 4.2 Types of Various Energetic Materials and Their Syntheses; 4.2.1 Nitrotriazoles; 4.2.2 Ammonium Dinitramide; 4.2.3 Pyrazoles; 4.2.4 Tetrazines.
4.2.5 Furazans4.2.6 Pyridines and Pyrazines; 4.3 Methods of Producing Energetic Material; 4.4 Importance of Nano-energetic Materials; 4.5 Nano-energetic Materials (NEMs) for Microscale Application; 4.6 Synthesis of Nano-energetic Materials (nEMs) for Microscale Applications; 4.7 Propellants and Explosives in Defense Application; 4.7.1 Rocket Propulsion; 4.7.2 Warheads; 4.7.2.1 Insensitive Energetic Materials; 4.7.2.2 Munitions Containing Nanoparticles; 4.7.2.3 Switchable Explosivity; 4.8 Conclusion; References; 5 Nano-aluminium as Catalyst in Thermal Decomposition of Energetic Materials.
6.2.3 Al/MoOx-Based Thin Energetic Film6.2.4 Al/Fe2O3-Based Thin Energetic Films; 6.3 Mg/CuO- or MnOx-Based Thin Energetic Films; 6.4 Other Materials Such as CuPc/MWCNT/ NiCo2O4-Based Thin Energetic Film; 6.5 Super-Hydrophobic Nano-energetic Thin Film; 6.6 Conclusions; References; 7 Nano-/Micro-engineering for Future Li-Ion Batteries; Abstract; 7.1 Introduction; 7.1.1 Introduction to the LiB Storage Mechanism; 7.2 Active Materials; 7.2.1 Effect of Size of the Active Material Particles; 7.2.2 Effect of Morphology and Structure of the Active Material Particle.
Abstract5.1 Introduction; 5.2 Catalytic Activity of Nano-Al on Ammonium Perchlorate; 5.3 Catalytic Activity of Nano-Al on RDX; 5.4 Catalytic Activity of Nano-al on HMX; 5.5 Catalytic Activity of Nano-al on TBX; 5.6 Catalytic Activity of Nano-al Thermite Composite on Ammonium Perchlorate; 5.7 Conclusion; References; Fabrication of Nano-energetic Materials; 6 Nano-energetic Materials on a Chip; Abstract; 6.1 Introduction; 6.2 Micro-/Nanofabrication of Thin Energetic Film/Structure; 6.2.1 Al/CuO-Based Thin Energetic Film/Structure; 6.2.2 Al/Bismuth Oxide (Bi2O3)-Based Thin Energetic Film.
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This book presents the latest research on the area of nano-energetic materials, their synthesis, fabrication, patterning, application and integration with various MEMS systems and platforms. Keeping in mind the applications for this field in aerospace and defense sectors, the articles in this volume contain contributions by leading researchers in the field, who discuss the current challenges and future perspectives. This volume will be of use to researchers working on various applications of high-energy research.