DocumentCode :
2431229
Title :
Atomistic simulation of quantum dots including strain and bandstructure and full band simulation of hole transport in 1-D heterostructures
Author :
Klimeck, G. ; Bowen, R.C. ; Boykin, T.B.
Author_Institution :
Jet Propulsion Lab., California Inst. of Technol., Pasadena, CA, USA
fYear :
2000
fDate :
22-25 May 2000
Firstpage :
6
Lastpage :
7
Abstract :
As microelectronic research moves devices to nanometer scale operating at GHz speeds, the physics of electron flow through devices becomes more complicated and physical effects, which previously could be ignored safely in microelectronic devices, become significant. High energy electron injection, quantization of charge, quantization of energy, and electron scattering interactions are some of the phenomena that are presently being investigated experimentally and theoretically. Raytheon/TI developed a 1-D quantum device simulator (NEMO-1D) to address such issues. That effort combined expertise in device physics, numerical and graphical user interface technologies to produce the first quantitative, general-purpose quantum device simulator. The work presented here is an extension of the of the NEMO 1-D software to massively parallel high performance computing to enable the simulation of hole transport and to 3-D modeling to enable quantum dot simulations.
Keywords :
semiconductor heterojunctions; semiconductor quantum dots; 1D heterostructure; 3D model; NEMO 1D software; atomistic simulation; band structure; full-band simulation; hole transport; massively parallel computing; quantum device simulator; quantum dot; strain; Capacitive sensors; Computational modeling; Electrons; Graphical user interfaces; Microelectronics; Nanoscale devices; Particle scattering; Physics; Quantization; Quantum dots;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Electronics, 2000. Book of Abstracts. IWCE Glasgow 2000. 7th International Workshop on
Conference_Location :
Glasgow, UK
Print_ISBN :
0-85261-704-6
Type :
conf
DOI :
10.1109/IWCE.2000.869893
Filename :
869893
Link To Document :
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