Graphene. Fundamentals and emergent applications by Jamie H. Warner

By Jamie H. Warner

Providing basic wisdom essential to comprehend graphene’s atomic constitution, band-structure, specific homes and an outline of groundbreaking present and emergent functions, this new instruction manual is key analyzing for fabrics scientists, chemists and physicists.

Since the 2010 physics Nobel Prize provided to Geim and Novosolev for his or her groundbreaking paintings separating graphene from bulk graphite, there was an incredible surge in curiosity within the sector. This has ended in loads of information books on graphene. besides the fact that, for this kind of enormous influx of latest entrants, the present literature is unusually moderate, focusing completely on present study or books on earlier "hot subject" allotropes of carbon.

This e-book covers primary basis of the constitution, estate, characterization equipment and functions of graphene, besides delivering the required wisdom of graphene’s atomic constitution, the way it pertains to its band-structure and the way this in flip results in the fantastic homes of graphene. And so it offers new graduate scholars and post-docs with a source that equips them with the data to adopt their examine.

  • Discusses graphene’s primary constitution and houses, performing as a time-saving handbook for confirmed research
  • Demonstrates a hundred+ fine quality graphical representations, offering the reader with transparent photographs to express advanced situations
  • Reviews characterization concepts suitable to grapheme, equipping the reader with experimental wisdom appropriate for sensible use instead of simply theoretical understanding

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Sample text

2007. Electronic transport properties of individual chemically reduced graphene oxide sheets. Nano Lett. 7, 3499–3503. , 2002. Structures of exfoliated single layers of WS2, MoS2 and MoSe2 in aqueous suspension. Phys. Rev. B 65, 125407. , 1995. Catalytic growth of singlewalled nanotubes by laser vaporization. Chem. Phys. Lett. 243, 49–54. , 2009. Probing graphene edges via Raman scattering. ACS Nano. 3, 45–52. , 1958. Band structure of rhombohedral graphite. Can. J. Phys. 36, 352–362. , 1992.

Chem. Phys. 63, 2544–2552. , 2009. Highyield synthesis of boron nitride nanosheets with strong ultraviolet cathodoluminescence emission. J. Phys. Chem. C 113, 15160–15165. , 2009b. Crystallographic tailoring of graphene by nonmetal SiOx nanoparticles. J. Am. Chem. Soc. 131, 13934–13936. , 2007. The rise of graphene. Nature Mater. 6, 183–191. , 2009. Intrinsic and extrinsic corrugation of monolayer graphene deposited on SiO2. Phys. Rev. Lett. 102, 076102. , 2008. Nanolithography and manipulation of graphene using an atomic force microscope.

Carbon 48, 2677–2689. , 2011. Graphene nanopatterns with crystallographic orientation control for nanoelectronic applications. Diam. Relat. Mater. 20, 1212–1217. , 2008. Hydrogen on graphene: electronic structure, total energy, structural distortions and magnetism from first-principles calculations. Phys. Rev. B 77, 035427. , 2006. Electronic states of graphene nanoribbons studied with the Dirac equation. Phys. Rev. B 73, 235411. , 2009. Two- and one-dimensional honeycomb structures of silicon and germanium.

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