Nano Science and Technology Institute - NSTI  
Nano Science and Technology Institute   Home | Subscribe | Site Map  
  ABOUT | COURSES | EVENTS | PUBLICATIONS | LEADERSHIP | OUTREACH | NEWS | PRESS | JOBS | Nanotechnology Solutions
px
px fade_top
Publications
Nanotech 2008 CDROM
Nanotech 2007 CDROM
Nanotech 2006 CDROM
Nanotech 2005 CDROM
Nanotech 2004 CDROM
3 CDROM Special Offer
Nanotech 2008 Vol. 1
Nanotech 2008 Vol. 2
Nanotech 2008 Vol. 3
Nanotech 2007 Vol. 1
Nanotech 2007 Vol. 2
Nanotech 2007 Vol. 3
Nanotech 2007 Vol. 4
Nanotech 2006 Vol. 1
Nanotech 2006 Vol. 2
Nanotech 2006 Vol. 3
Nanotech 2005 Vol. 1
Nanotech 2005 Vol. 2
Nanotech 2005 Vol. 3
WCM 2005
Nanotech 2004 Vol. 1
Nanotech 2004 Vol. 2
Nanotech 2004 Vol. 3
Nanotech 2003 Vol. 1
Nanotech 2003 Vol. 2
Nanotech 2003 Vol. 3
Nanotech 2002 Vol. 1
Nanotech 2002 Vol. 2
Nanotech 2001 Vol. 1
Nanotech 2001 Vol. 2
MSM 2000
MSM 99
MSM 98
Index of Authors
Index of Keywords
Index of Affiliations
Library Request Form
Shopping Cart
Order Form
 
Publications Publications
Nanotech 2003 Vol. 3
p
 
Technical Proceedings of the 2003 Nanotechnology Conference and Trade Show, Volume 3
Nanotech 2003 Vol. 3
Technical Proceedings of the 2003 Nanotechnology Conference and Trade Show, Volume 3
 
Chapter 7: Nano Devices and Systems
 

Carrier and Phonon Spectrum in Quantum Dot Superlattices for Optoelectronic and Thermoelectric Applications

Authors:O.L. Lazarenkova and A.A. Balandin
Affilation:University of California - Riverside, US
Pages:305 - 308
Keywords:quantum dot superlattices, phonon spectrum modification
Abstract:Quantum dot superlattices, e.g. multiple arrays of quantum dots, have been proposed for optoelectronic and thermoelectric applications. In this paper we present two models for calculating carrier spectrum in regimented three-dimensional (3D) quantum dot superlattices and perform model-based structure optimization for specific applications. To find the carrier spectrum we solve Schrödinger equation using two different approaches. In the first one, we use a model confining potential that allows for carrier wave function separation and semi-analytical solution. In the second approach, we solve the equation directly using the finite-difference method. We find good agreement of the results for the below-the-barrier states, which validates further use of the simplified semi-analytical model for carrier transport and optical spectrum calculations. The acoustic phonon dispersion in quantum dot superlattices is found from the solution of the elasticity equation by the finite-difference method. Our results indicate strong modification of phonon dispersion in such nanostructures. The latter affects electron ? phonon scattering rates and modifies carrier transport in such structures. 1. K.L. Wang and A.A. Balandi in Optics of Nanostructured Materials, edited by V. Markel and T. George (John Wiley & Sons, New York, 2000), p. 515. 2. O.L. Lazarenkova and A.A. Balandin, J. Appl. Phys., 89, 5509 (2001).
Carrier and Phonon Spectrum in Quantum Dot Superlattices for Optoelectronic and Thermoelectric ApplicationsView paper
ISBN:0-9728422-2-5
Pages:560
Hardcopy:$125.00
Special:3 CD Set — 15% off with Free Shipping
Up
nanoPRwire™
nanoPRwire
News Headlines
nano World news
 
 
 
 
px
© Nano Science and Technology Institute     About NSTI | Terms of Use | Privacy Policy | Contact