A time-dependent momentum-space density functional theoretical approach for electron transport dynamics in molecular devices

View/ Open
Issue Date
2009-10-27Author
Chu, Shih-I
Zhou, Zhongyuan
Publisher
European Physical Society
Type
Article
Article Version
Scholarly/refereed, publisher version
Metadata
Show full item recordAbstract
We propose a time-dependent density functional theoretical (TDDFT) approach in momentum (\mathcal{P} ) space for the study of electron transport in molecular devices under arbitrary biases. The basic equation of motion, which is a time-dependent integrodifferential equation obtained by Fourier transform of the time-dependent Kohn-Sham equation in spatial coordinate (\mathcal{R} ) space, is formally exact and includes all the effects and information of the electron transport in the molecular devices. The electron wave function is calculated by solving this equation in a finite \mathcal{P} -space volume. This approach is free of self-energy function and memory term related to the electrodes in the \mathcal{R} space and beyond the wide-band limit (WBL). The feasibility and power of the approach are demonstrated by the calculation of current through one-dimensional systems.
Description
This is the published version, also available here: http://dx.doi.org/10.1209/0295-5075/88/17008.
Collections
Citation
Zhongyuan Zhou and Shih-I Chu 2009 EPL 88 17008. "A time-dependent momentum-space density functional theoretical approach for electron transport dynamics in molecular devices." http://dx.doi.org/doi:10.1209/0295-5075/88/17008.
Items in KU ScholarWorks are protected by copyright, with all rights reserved, unless otherwise indicated.
We want to hear from you! Please share your stories about how Open Access to this item benefits YOU.