Applications of Graphene and Graphene-Oxide based by Sekhar Ray

By Sekhar Ray

Carbon nanomaterials have a distinct position in Nanoscience because of their unprecedented electric, thermal, chemical and mechanical homes and feature discovered program in components as varied as composite fabrics, strength garage and conversion, sensors, drug supply, box emission units and nano-scale digital elements. Conjugated carbon nanomaterial covers the parts of carbon nanotubes, fullerenes and graphene. Graphene is the latest of the carbon nanomaterials and supplies to be a really energetic box. Already considering the fact that its isolation in 2004 it has grabbed the eye of the chemistry, fabrics and physics groups. It supplies to rival carbon nanotubes when it comes to homes and strength purposes with the variety of courses emerging from ca. one hundred thirty in 2005 to ca. 2,800 in 2010. during this brief booklet Sekhar Ray offers an outline on graphene and graphene-oxide with a powerful specialize in functions. established in 3 chapters, one on graphene, one on graphene-oxide and one on graphene dependent nanoparticles his source describes in each one bankruptcy the instruction (including synthesis and functionalization) and fabric houses prior to detailing a complete diversity of functions. Ray finishes each one bankruptcy with info on final demanding situations and perspectives.

  • Written by means of knowledgeable within the box who, in the course of his final 17 years of study, has released greater than eighty peer reviewed articles in well-known foreign journals
  • Gives full-chapter overviews on Graphene, Graphene-Oxide, and Graphene established nanoparticles
  • Focusses on applications

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Extra info for Applications of Graphene and Graphene-Oxide based Nanomaterials

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2008. Measurement of the optical absorption spectra of epitaxial graphene from terahertz to visible. Appl. Phys. Lett. 93, 1À3, 131905. , 2008. Pillared graphene: a new 3-D network nanostructure for enhanced hydrogen storage. Nano Lett. 8, 3166À3170. , 2010. Multifunctional porous graphene for nanoelectronics and hydrogen storage: new properties revealed by first principle calculations. J. Am. Chem. Soc. 132, 2876À2877. , 2012. Graphene nanosheet-CNT hybrid nanostructure electrode for a proton exchange membrane fuel cell.

Sens. Actuators B 157, 669À674. , 2009. Utilization of a buffered dielectric to achieve high field-effect carrier mobility in graphene transistors. Nano Lett. 9, 4474À4478. , 2008. Stability and magnetism of hydrogen dimers on graphene. Phys. Rev. B 78, 1À8, 085417. , 2013. The influence of dilution gases on multilayer graphene formation in laser pyrolysis. Appl. Surf. Sci. 278, 313À316. , 2005. Novel structures of carbon layers on a Pt(1 1 1) surface. Surf. Interface Anal. 37 (2), 120À123. , 2009.

Et al. (2013) demonstrated a liquid crystal-based terahertz phase shifter with this graphene. 8 with saturation voltage of 5 V. This phase shifter provides continuous tunability, fully electrical controllability, and low DC voltage operation that depends on the number of graphene layers. Blake et al. (2008) also demonstrated liquid crystal devices with electrodes made of graphene that show excellent performance with a high contrast ratio that can be comparable with conventionally used metal oxides in terms of low resistivity, high transparency, and chemical stability.

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