Title :
Computational design of semiconductor nanostructures for optoelectronic, electronic, and thermoelectric applications
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Wisconsin - Madison, Madison, WI, USA
Abstract :
Efficient computational tools are an inherent part of the design of semiconductor nanostructures for desired electronic, thermal, or optical properties. The characteristics of nanostructures are strongly influenced by the properties of the interfaces, such as roughness, surface defects, or adsorbed charges, so a major challenge in predicting the properties of nanostructures lies precisely in capturing the complex interplay between the confined particle states and the surface condition. In this paper, I review some recent successful applications of ensemble Monte Carlo - an efficient and versatile transport simulation technique - to predict the properties and optimize the design of a wide range of realistic semiconductor nanostructures, from quantum cascade lasers to electronic devices and thermoelectrics.
Keywords :
Monte Carlo methods; nanoelectronics; quantum cascade lasers; thermoelectric devices; computational design; confined particle states; electronic applications; electronic devices; ensemble Monte Carlo; optoelectronic applications; quantum cascade lasers; semiconductor nanostructures; surface condition; thermoelectric applications; transport simulation;
Conference_Titel :
Nanotechnology (IEEE-NANO), 2010 10th IEEE Conference on
Conference_Location :
Seoul
Print_ISBN :
978-1-4244-7033-4
Electronic_ISBN :
1944-9399
DOI :
10.1109/NANO.2010.5698047