New PDF release: Applied Physics of Carbon Nanotubes: Fundamentals of Theory,

Optics

By Slava V. Rotkin, Shekhar Subramoney

ISBN-10: 3540231102

ISBN-13: 9783540231103

The e-book describes the state of the art in basic, utilized and equipment physics of nanotubes, together with fabrication, manipulation and characterization for equipment functions; optics of nanotubes; delivery and electromechanical units and basics of concept for functions. this data is important to the sphere of nanoscience when you consider that nanotubes have the capability to turn into a really major digital fabric for many years to return. The publication will gain all all readers drawn to the appliance of nanotubes, both of their theoretical foundations or in newly constructed characterization instruments which may permit sensible machine fabrication.

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Additional resources for Applied Physics of Carbon Nanotubes: Fundamentals of Theory, Optics and Transport Devices

Example text

M. Damnjanovi´c, I. Miloˇsevi´c, T. Vukovi´c, B. Nikoli´c and E. Dobardˇzi´c: “Symmetry Based Fundamentals on Carbon Nanotubes”, Chapter 2, in this volume. 4. Phaedon Avouris, Marko Radosavljevi´c and Shalom J. Wind: “Carbon Nanotube Electronics and Optoelectronics”, Chapter 9, in this volume. 5. R. Bruce Weisman: “Fluorescence Spectroscopy of Single-Walled Carbon Nanotubes”, Chapter 8, in this volume. 6. Anand Jagota, Bruce A. Diner, Salah Boussaad, and Ming Zheng: “Carbon Nanotube – Biomolecule Interactions: Applications in Carbon Nanotube Separation and Biosensing”, Chapter 10, in this volume.

E. 53 eV, both the conduction band bottom and the valence band top shift away from the original Fermi point k = 0 and the gap closes. At fields larger than the critical field the gap opens again. The critical field strength Ec is inversely proportional to R2 , as in the case of a quasi–metallic nanotube. We note that for two different types of semiconductor SWNTs (mentioned in the Introduction) the weak field regime is different. 7 V/˚ A. In contrast, the gap of a [19,0] SWNT will monotonically decrease with the field [47].

S. Iijima: Nature 354, 56 (1991) 3. M. Damnjanovi´c, I. Miloˇsevi´c, T. Vukovi´c, B. Nikoli´c and E. Dobardˇzi´c: “Symmetry Based Fundamentals on Carbon Nanotubes”, Chapter 2, in this volume. 4. Phaedon Avouris, Marko Radosavljevi´c and Shalom J. Wind: “Carbon Nanotube Electronics and Optoelectronics”, Chapter 9, in this volume. 5. R. Bruce Weisman: “Fluorescence Spectroscopy of Single-Walled Carbon Nanotubes”, Chapter 8, in this volume. 6. Anand Jagota, Bruce A. Diner, Salah Boussaad, and Ming Zheng: “Carbon Nanotube – Biomolecule Interactions: Applications in Carbon Nanotube Separation and Biosensing”, Chapter 10, in this volume.

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Applied Physics of Carbon Nanotubes: Fundamentals of Theory, Optics and Transport Devices by Slava V. Rotkin, Shekhar Subramoney


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