Carbon nanomaterials sourcebook. Volume II, Nanoparticles, by Klaus D. Sattler

By Klaus D. Sattler

The Carbon Nanomaterials Sourcebook includes huge, interdisciplinary insurance of carbon nanomaterials, encompassing the entire scope of the field—from physics, chemistry, and fabrics technology to molecular biology, engineering, and medicine—in complete volumes.

Written in an academic sort, this moment quantity of the sourcebook:

  • Focuses on nanoparticles, nanocapsules, nanofibers, nanoporous buildings, and nanocomposites
  • Describes the basic homes, development mechanisms, and processing of every nanomaterial discussed
  • Explores functionalization for digital, power, biomedical, and environmental applications
  • Showcases fabrics with unparalleled homes, synthesis equipment, large-scale construction concepts, and alertness prospects
  • Provides the instruments beneficial for realizing 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 components: formation, homes, and purposes. This setup enables speedy and simple seek, making the Carbon Nanomaterials Sourcebook: Nanoparticles, Nanocapsules, Nanofibers, Nanoporous constructions, and Nanocomposites essential reference for scientists and engineers.

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Extra info for Carbon nanomaterials sourcebook. Volume II, Nanoparticles, nanocapsules, nanofibers, nanoporous structures, and nanocomposites

Sample text

10 Å), carbyne chain length (approximately 65–120 Å), and the system temperature (100–500 K). 14) 2 and Δ represents the total displacement of the compressive spring. The results demonstrate that effective stiffness is inversely related to chain length and confinement radius, while an increase in temperature causes a marginal increase in effective stiffness. The increase due to temperature is contrary to the typical trend that compliant molecular chains are more flexible as temperature increases, as the confinement limits the possible configuration space.

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. Ozpineci, A. , “Quantum effects of thermal conductance through atomic chains,” Phys. Rev. B 63 (2001): 125415. , Cinquanta, E. , “Effect of axial torsion on sp carbon atomic wires,” Phys. Rev. Lett. 102 (2009): 245502. Roman, R. E. & Cranford, S. , “Mechanical properties of silicone,” Comput.

Chem. 2 (2010): 967–971. , Bosze, W. , “One-dimensional nanostructures based bio-detection,” Biosens. Bioelectron. 63 (2015): 432–443. , van Duin, A. C. T. & Goddard, W. , “ReaxFF reactive force field for molecular dynamics simulations of hydrocarbon oxidation,” J. Phys. Chem. A 112 (2008): 1040–1053. -K. , “Stability and existence of carbyne with carbon chains,” New Carbon Mater. 20 (2005): 83–92. , Meyer, J. , Algara-Siller, G. , “From graphene constrictions to single carbon chains,” New J. Phys.

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