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 whole scope of the field—from physics, chemistry, and fabrics technology to molecular biology, engineering, and medicine—in complete volumes.

Written in an instructional type, this moment quantity of the sourcebook:

  • Focuses on nanoparticles, nanocapsules, nanofibers, nanoporous buildings, and nanocomposites
  • Describes the basic houses, 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 options, and alertness prospects
  • Provides the instruments worthwhile 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 functions. This setup enables quickly 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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Additional resources for Carbon nanomaterials sourcebook. Volume II, Nanoparticles, nanocapsules, nanofibers, nanoporous structures, and nanocomposites

Example text

In the next section, we will discuss the structural properties of carbon chains of infinite and finite size, focusing in particular on the electronic and vibrational properties. 1 Molecular and Electronic Structure An sp-hybridized carbon wire can be ideally modeled as an infinite chain of atoms in two possible geometric arrangements: either a sequence of double equalized bonds (…=C=C=…; cumulene), or a series of alternating triple and single bonds in a dimerized geometry (…–C≡C–C–…; polyyne).

Smith, P. P. K. & Buseck, P. , “Carbyne forms of carbon: Evidence for their existence,” Science 229 (1985): 485–487. Topsakal, M. , “Elastic and plastic deformation of graphene, silicene, and boron nitride honeycomb nanoribbons under uniaxial tension: A first-principles density-functional theory study,” Phys. Rev. B 81 (2010): 024107. Tykwinski, R. , Eisler, S. , “Toward carbyne: Synthesis and stability of really long polyynes,” Pure Appl. Chem. 82 (2010): 891–904. van Duin, A. C. , Lorant, F. , “ReaxFF: A reactive force field for hydrocarbons,” J.

16) µ 21 Carbyne: A One-Dimensional Carbon Allotrope where v is the velocity of the string, T is the tensile force in the string, and μ is the linear density. 17) 2L µ where L is the length of the string. 9a). 9b and c). Strain values are varied to determine the maximum strain value for each length chain and, hence, the fundamental frequency limit of each chain. In this simple study, to transcribe the frequency range, the vibrational frequencies are manipulated into an audible language or a musical scale.

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