By Peter John Burke
The sphere of nanotubes and nanowires is evolving at a fast velocity, with many power purposes in electronics, optics, and sensors, to call a number of. during this ebook, quite a few admired researchers summarize our present knowing of those new fabrics structures, in addition to a few of these power purposes. A picture of the state of the art within the box of nanowires and nanotubes, the contributions supply an instructive mixture of experimental, theoretical, and visionary fabric to provide the reader a sign of the place the sector is now, and the place it truly is going.
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Additional resources for Nanotubes and Nanowires (Selected Topics in Electronics and Systems)
Rev. B, 68,045426,2003. 50. K. Alam and R. Lake, “Performance of 2nm gate length carbon nanotube field-effect transistors with sourceldrain underlaps,” Appl. Phys. , vol. 87, p. 073 104, 2005. 51. A. Verma, M. Z. Kauser, and P. P. Ruden, “Ensemble Monte Carlo transport simulations for semiconducting carbon nanotubes,” J. Appl. , vol. 97, p. 114319, 2005. 52. T. S. Xia, L. R. Register, and S. K. Banerjee, “Calculations and applications of the complex band structure for carbon nanotube field-effect transistors,” Phys.
Fischer, and R. E. Smalley, "Crystalline ropes of metallic carbon nanotubes," Science, Vol. 273, pp. 483-487, 1996. 14. J. Kong, H. T. Soh, A. M. Cassell, C. F. Quate, and H. Dai, "Synthesis of individual single-walled carbon nanotubes on patterned silicon wafers," Nature, Vol. 395, pp. 878-881, 1998. 26 Carbon Nanotube Field-Effect Transistors 909 15. M. , 1982. 16. S. Heinze, J. Tersoff, R. Martel, V. Derycke, J. Appenzeller, and P. Avouris, "Carbon nanotubes as Schottky barrier transistors," Physical Review Letters, Vol.
However, detailed data on the frequency dependence of the conductivity is unavailable, and the exact relationship between the change in conductivity and the real part of the permittivity has yet to be determined. That relationship may also serve to explain the small percentage change of resonant frequency in this resonant sensor compared to the order of magnitude change of DC conductivity in conductivity sensors. In summary, the effect of an increase in conductivity results in an increase of loss, a decrease in Q, an increase in the effective dielectric constant, and an decrease in the resonant frequency.
Nanotubes and Nanowires (Selected Topics in Electronics and Systems) by Peter John Burke