Fundamentals of Nanoparticles: Classifications, Synthesis Methods, Properties and Characterization explores the nanoparticles and architecture of nanostructured materials being used today in a comprehensive, detailed manner. This book focuses primarily on the characterization, properties and synthesis of nanoscale materials, and is divided into three major parts. This is a valuable reference for materials scientists, and chemical and mechanical engineers working in R&D and academia, who want to learn more about how nanoparticles and nanomaterials are characterized and engineered. Part one covers nanoparticles formation, self-assembly in the architecture nanostructures, types and classifications of nanoparticles, and signature physical and chemical properties, toxicity and regulations. Part two presents different ways to form nanometer particles, including bottom-up and top-down approaches, the classical and non-classical theories of nanoparticles formation and self-assembly, surface functionalization and other surface treatments to allow practical use. Part three covers characterization of nanoparticles and nanostructured materials, including the determination of size and shape, in addition to atomic and electronic structures and other important properties. Includes new physical and chemical techniques for the synthesis of nanoparticles and architecture nanostructures Features an in-depth treatment of nanoparticles and nanostructures, including their characterization and chemical and physical properties Explores the unusual properties of materials that are developed by modifying their shape and composition and by manipulating the arrangement of atoms and molecules Explains important techniques for the synthesis, fabrication and the characterization of complex nano-architectures
W. Möller, S. Parascandola, T. Telbizova, R. Günzel, and E. Richter, Surface processes and diffusion mechanisms of ion ... S. K. Karkari, A. Vetushka, and J. W. Bradley, Measurement of the plasma potential adjacent to the substrate in a ...
The book aims to provide readers with a basic understanding of how nanomaterials are synthesized as well as their resultant physical properties it therefore focuses on the science of nanomaterials rather than applications, serving as an ...
[19] Xu, S., and G. Y. Liu, ''Nanometer-Scale Fabrication by Simultaneous Nanoshaving and Molecular Self-Assembly,'' Langmuir, Vol. 13, No. 2, 1997, pp. 127–129. [20] Liu, M. Z., N. A. Amro, and G. Y. Liu, ''Nanografting for Surface ...
Isotopic (radio)labeling is one of the most powerful methods for nanoparticle tracing in experimental studies. This book presents an introduction to some commonly used nanomaterials, describes various methods with which they may
For the first time, this comprehensive handbook presents the emerging field of microwave technology for the synthesis of nanoparticles.
This new handbook is the first to explain complete aspects of nanoparticles with many application examples showing their advantages and advanced development.
Finally, opportunities for enabling a more sustainable future are covered. This book is suitable for researchers and practitioners in academia and industry in materials science and engineering, chemistry and chemical engineering.
[8] J. Newman, Physics of the Life Sciences, Springer Science & Business Media, 2010. ... [22] K.L. Jensen, Introduction to the Physics of Electron Emission, Wiley Online Library, 2018. [23] W. Dolan, W. Dyke, Temperature-and-field ...
This book reveals the electromagnetic interference shielding properties of nanocomposites. The fundamental attributes of the nanosystems leading to the multifunctional applications in diverse areas are further explored throughout this book.
This is an important reference source for materials scientists, engineers and biomedical scientists who are seeking to increase their understanding of how polymeric nanomaterials are being used for a range of biomedical and industrial ...