By Klaus D. Sattler
The Carbon Nanomaterials Sourcebook includes vast, interdisciplinary insurance of carbon nanomaterials, encompassing the whole scope of the field—from physics, chemistry, and fabrics technological know-how to molecular biology, engineering, and medicine—in accomplished volumes.
Written in an educational kind, this moment quantity of the sourcebook:
- Focuses on nanoparticles, nanocapsules, nanofibers, nanoporous constructions, and nanocomposites
- Describes the elemental homes, progress mechanisms, and processing of every nanomaterial discussed
- Explores functionalization for digital, strength, biomedical, and environmental applications
- Showcases fabrics with extraordinary houses, synthesis tools, large-scale construction concepts, and alertness prospects
- Provides the instruments important for knowing present and destiny know-how advancements, together with vital equations, tables, and graphs
Each bankruptcy is devoted to another kind of carbon nanomaterial and addresses 3 major parts: formation, homes, and functions. This setup makes it possible for fast and straightforward seek, making the Carbon Nanomaterials Sourcebook: Nanoparticles, Nanocapsules, Nanofibers, Nanoporous constructions, and Nanocomposites a must have reference for scientists and engineers.
Read or Download Carbon nanomaterials sourcebook. Volume II, Nanoparticles, nanocapsules, nanofibers, nanoporous structures, and nanocomposites PDF
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Additional info for Carbon nanomaterials sourcebook. Volume II, Nanoparticles, nanocapsules, nanofibers, nanoporous structures, and nanocomposites
115(5), pp. 1843– 1850. ) 18 Carbon Nanomaterials Sourcebook bending, they are merely compressed together, but the overall structure is unchanged. 7b) (Hu 2011). Again, in terms of the orbitals, the nonsymmetric are forced to overlap upon bending, changing the electron structure and electron–phonon interaction. Therefore, a polyynic chain may be a more viable option for sensor applications under bending, which is also advantageous due to a more favorable mechanical stability. 3 Thermal Transport Finally, we consider thermal transport in carbyne.
Buehler, M. , “Tensile strength of carbyne chains in varied chemical environments and structural lengths,” Nanotechnology 25 (2014): 371001. Nair, A. W. & Buehler, M. , “The minimal nanowire: Mechanical properties of carbyne,” EPL Europhys. Lett. 95 (2011): 16002. , Wakabayashi, T. , “Single-wall carbon nanotubes encaging linear chain C10H2 polyyne molecules inside,” Chem. Phys. Lett. 428 (2006): 356–360. , Sugai, T. , “Raman spectroscopy of size-selected linear polyyne molecules C2nH2 (n = 4–6) encapsulated in single-wall carbon nanotubes,” J.
Wakabayashi, T. , “Single-wall carbon nanotubes encaging linear chain C10H2 polyyne molecules inside,” Chem. Phys. Lett. 428 (2006): 356–360. , Sugai, T. , “Raman spectroscopy of size-selected linear polyyne molecules C2nH2 (n = 4–6) encapsulated in single-wall carbon nanotubes,” J. Phys. Chem. C 111 (2007): 5178–5183. Carbyne: A One-Dimensional Carbon Allotrope 25 Novoselov, K. , Geim, A. , Morozov, S. V. , “Electric field effect in atomically thin carbon films,” Science 306 (2004): 666–669.