The binding energy of the single and double bound polaron bound to a helium-type donor impurity in quantum wells (QWs) subject to a perpendicular electric field are calculated by a variational method. The couplings of an electron and the impurity with various phonon modes are considered. The results
Electric field effects on the performance of a candidate multipole molecular switch: A quantum computational study
β Scribed by Hassan Sabzyan; Davood Farmanzadeh
- Publisher
- John Wiley and Sons
- Year
- 2007
- Tongue
- English
- Weight
- 286 KB
- Volume
- 28
- Category
- Article
- ISSN
- 0192-8651
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β¦ Synopsis
Abstract
Structural and electronic responses of the organic molecule di(4βnitroβ2βmethylenamine phenyl) diazene a candidate molecular switch, as an active device in a nanoelectronic circuit, to the external electric fields with strengths 5 Γ 10^β4^ β 1.8 Γ 10^β2^ a.u. included explicitly in the Hamiltonian are studied using B3LYP/6β31G* method. This study shows that thermodynamic formation functions are not affected significantly by the applied field. Electronic spatial extent show a negligibly small change (<2%) over the studied range of the electric field strength. Calculated electric dipole moments show significant sensitivity to the external electric field, which result consequently in much stronger interactions with the electrodes (poles) of the mother nanoelectronic circuit at higher electric field strengths. Natural bond orbital atomic charges analysis shows different field effects on different atoms depending on their positions with respect to the direction of the field. The applied field increases HOMO, LUMO, and the Fermi level energies; however, decreases the HOMOβLUMO gap (HLG) values. Results of this study show that it is possible to control fieldβinduced charge redistribution over the molecule by using pushβpull effects of different substitution via their connection points to the extended Οβsystem. Β© 2007 Wiley Periodicals, Inc. J Comput Chem, 2007
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