Download Graphene Science Handbook: Electrical and Optical Properties by Mahmood Aliofkhazraei, Nasar Ali, William I. Milne, Cengiz PDF

By Mahmood Aliofkhazraei, Nasar Ali, William I. Milne, Cengiz S. Ozkan, Stanislaw Mitura, Juana L. Gervasoni

Discover the original Electron delivery homes of Graphene

The Graphene technological know-how Handbook is a six-volume set that describes graphene’s distinct structural, electric, and chemical houses. The publication considers how those homes can be utilized in several functions (including the improvement of batteries, gas cells, photovoltaic cells, and supercapacitors in accordance with graphene) and produced on a major and international scale.

Volume One: Fabrication Methods

Volume : Nanostructure and Atomic Arrangement

Volume 3: electric and Optical Properties

Volume 4: Mechanical and Chemical Properties

Volume 5: Size-Dependent Properties

Volume Six: purposes and Industrialization

This guide describes the fabrication tools of graphene; the nanostructure and atomic association of graphene; graphene’s electric and optical houses; the mechanical and chemical homes of graphene; the scale results in graphene, characterization, and purposes in line with size-affected houses; and the appliance and industrialization of graphene.

Volume 3 is devoted to graphene’s electric and optical houses and covers:

  • Graphene and graphene nanoribbons to be used in high-frequency transistors, energy-efficient electronics and photonic devices
  • The interface of graphene/high-κ dielectrics
  • The strain-induced adjustments of plasmons in graphene
  • A attainable complicated actual framework for treating graphenic buildings
  • Recent progresses within the electrical lens in response to graphene-like materials
  • The thermal and thermoelectric shipping houses of graphene
  • A numerical procedure for simulating the electromagnetic box interplay with single-layer graphene and more

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Additional info for Graphene Science Handbook: Electrical and Optical Properties

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Yeh, G. Lin, P. B. Chu, E. G. Hoffman, E. J. Kruglick, K. S. J. Pister, and M. H. Hecht, Proc. SPIE 2641, Microelectron. Struct. Microelectromech. Dev. Opt. Process. Multimed. Appl. 220933. 165. N. H. Tea, V. Milanovic, C. A. Zincke, J. S. Suehle, M. Gaitan, M. E. Zaghloul, and J. Geist, Microelectromech. Syst. J. 6, 363, 1997. Graphene Science Handbook 166. R. G. Knobel, and A. N. Cleland, Nature 424, 291, 2003. V. Sazonova, Y. Yaish, H. Ustunel, D. Roundy, T. A. Arias, and P. L. McEuen, Nature 431, 284, 2004.

L. Song, Z. Liu, A. L. Reddy, N. T. Narayanan, J. TahaTijerina, J. Peng, G. Gao, J. Lou, R. Vajtai, and P. M. Ajayan, Adv. Mat. 24, 4878, 2012. 2 Interface between Graphene and High-κ Dielectrics Ming Yang, Yuan Ping Feng, and Shi Jie Wang CONTENTS Abstract........................................................................................................................................................................................ 1 Growth of High-κ Dielectrics on Graphene.......................................................................................................................

Q. Qu, Y. Huang, and X. F. Duan, Adv. Mater. 22, 1941, 2010. A. Sinitskii, and J. M. Tour, Appl. Phys. Lett. 100, 103106, 2012. 107. X. C. Jiang, T. Herricks, and Y. N. Xia, Nano Lett. 2, 1333, 2002. L. C. Campos, V. R. Manfrinato, J. D.  Kong, and P. Jarillo-Herrero, Nano Lett. 9, 2600, 2009. L. Ci, Z. Xu, L. Wang, W. Gao, F. Ding, K. F. Kelly, B. I. Yakobson, and P. M. Ajayan, Nano Res. 1, 116, 2008. S. S. Datta, D. R. Strachan, S. M. Khamis, and A. T. C. Johnson, Nano Lett. 8, 1912, 2008.

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