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    Gap tuning and effective electron correlation energy in amorphous silicon: A first principles density functional theory-based molecular dynamics study

    , Article Computational Materials Science ; Volume 102 , May , 2015 , Pages 110-118 ; 09270256 (ISSN) Tabatabaei, M ; Shodja, H. M ; Esfarjani, K ; Sharif University of Technology
    Elsevier  2015
    Abstract
    First principles density functional theory (DFT)-based molecular dynamics (MD) is used to study some physical and electronic properties of amorphous silicon (a-Si) samples, as-quenched and annealed containing dangling and floating bonds (pertinent to the threefold- and fivefold-coordinated defects, respectively) as well as distorted tetrahedral bonds. Surprisingly, except for the work of Pantelides (1986) who gave a rough estimate for the effective electron correlation energy, Ueff of a floating bond on the fivefold-coordinated Si, to date, there are no theoretical studies in the literature for the calculation of Ueff pertinent to this type of defect. In this work, Ueff for each type of... 

    Methane molecule over the defected and rippled graphene sheet

    , Article Solid State Communications ; Volume 152, Issue 15 , August , 2012 , Pages 1493-1496 ; 00381098 (ISSN) Shayeganfar, F ; Neek Amal, M ; Sharif University of Technology
    Elsevier  2012
    Abstract
    Adsorption of a methane molecule (CH 4) onto a defected and rippled graphene sheet is studied using ab initio and molecular mechanics calculations. The optimal adsorption position and orientation of this molecule on the graphene surface (motivated by the recent realization of graphene sensors to detect individual gas molecules) is determined and the adsorption energies are calculated. In light of the density of states, we used the SIESTA code. It is found that (i) classical force field yields adsorption energy comparable with experimental result and ab initio calculation; (ii) the periodic nature of the van der Waals potential energy stored between methane and perfect sheet is altered due to... 

    First-principle electronic structure calculation of BaFe2-x Cox As2 (X = 0,1, 2) superconductor

    , Article Journal of Superconductivity and Novel Magnetism ; Volume 28, Issue 8 , August , 2015 , Pages 2249-2254 ; 15571939 (ISSN) Shafiei, M ; Khosroabadi, H ; Akhavan, M ; Sharif University of Technology
    Springer New York LLC  2015
    Abstract
    The equilibrium crystal structure and electronic structure of BaFe2-x Cox As2 (x = 0,1, 2) superconductor have been investigated by using the pseudopotential Quantum Espresso code based on the ab initio density functional theory in the generalized gradient approximation. The equilibrium crystal structure for x = 1.0 has been determined by considering five different Fe/Co configurations. This study shows that the spin calculation is essential to obtain the experimental values at x = 0.0. The total and partial density of states, band structure, and Fermi surfaces of the three compounds has been calculated. Density of states calculation indicates the important... 

    Effects of K doping on electronic structure of Ba1-xKxFe2As2 superconductor by ab-initio density functional theory

    , Article Physica C: Superconductivity and its Applications ; Vol. 507, issue , Dec , 2014 , p. 22-24 Sandoghchi, M ; Khosroabadi, H ; Akhavan, M ; Sharif University of Technology
    Abstract
    The crystal and electronic structures of normal phase of Ba1-xKxFe2As2 for x = 0.0, 0.5 and 1.0 have been studied by using pseudopotential Quantum Espresso code based on ab-initio density functional theory. Effects of K doping on the crystal structure and lattice parameters have been calculated and compared with the experimental and computational reported data for similar compounds. The metal-metal bonding scenario was used to explain the changes of lattice parameters by K doping. The electronic structure of this system including of density of states and band structure have been calculated and investigated by K doping. One of the interesting results is that a larger peak is appeared near the... 

    Electronic and phonon structures of BaFe2As2 superconductor by Ab-initio density functional theory

    , Article Journal of Superconductivity and Novel Magnetism ; Volume 26, Issue 1 , January , 2013 , Pages 93-100 ; 15571939 (ISSN) Sandoghchi, M ; Khosroabadi, H ; Almasi, H ; Akhavan, M ; Sharif University of Technology
    2013
    Abstract
    Electronic and phonon structures of the BaFe2As2 superconductor in the magnetic-orthorhombic phase have been investigated by the ab-initio density functional theory using the pseudopotential Quantum Espresso code. Density of state and electronic band structure for this phase has been studied, but phonon dispersion has been obtained only for the nonmagnetic-orthorhombic phase. Electronic band structure and density of states are in good agreement with other calculations in the literature. The electronic state near the Fermi energy are essentially made from Fe3d and As4p orbital that indicate in-plane conductivity in FeAs layers in this system. Comparing calculated phonon dispersions with... 

    First-principles study on ZnV2O6 and Zn2V2O7: two new photoanode candidates for photoelectrochemical water oxidation

    , Article Ceramics International ; Volume 44, Issue 6 , 2018 , Pages 6607-6613 ; 02728842 (ISSN) Sameie, H ; Sabbagh Alvani, A. A ; Naseri, N ; Du, S ; Rosei, F ; Sharif University of Technology
    Elsevier Ltd  2018
    Abstract
    We used first principles calculations based on density functional theory with generalized gradient approximation to investigate and compare the structural, electronic and optical properties of two photoanode materials, ZnV2O6 and Zn2V2O7, for use in photocatalytic water splitting. After geometry optimization, the calculated structural parameters evince a satisfactory agreement with the reported experimental results indicating that the used method and conditions are suitable. The electronic structures demonstrate that both photocatalysts possess favorable band gaps (2.31 and 2.52 eV) and appropriate band edge positions for oxygen evolution reaction under solar radiation. The relatively light... 

    Effect of stone-wales defects on electronic properties of armchair graphene nanoribbons

    , Article 2013 21st Iranian Conference on Electrical Engineering, ICEE 2013 ; 2013 , 14-16 May ; 9781467356343 (ISBN) Samadi, M ; Faez, R ; Sharif University of Technology
    2013
    Abstract
    In this paper, the effects of Stone-Wales (SW) defect on transport properties of armchair graphene nanoribbons (AGNRs) are studied using tight binding calculations combined with nonequilibrium Green's function (NEGF). We evaluate transmission and density of states (DOS) in two cases, pristine and defective AGNR, and we compare the results. Our results indicate that in the latter case, a larger bandgap is made due to symmetry breaking in GNR layer  

    The electron density distribution and field profile in underdense magnetized plasma

    , Article Physics of Plasmas ; Volume 17, Issue 3 , 2010 ; 1070664X (ISSN) Sadighi-Bonabi, R ; Etehadi-Abari, M ; Sharif University of Technology
    2010
    Abstract
    In this work propagation of a high frequency electromagnetic wave in underdense plasma in presence of an external magnetic field is investigated. When a constant magnetic field perpendicular to the motion of electrons is applied, then the electrons rotate around the magnetic field lines and generate electromagnetic part in the wake with a nonzero group velocity. By using of the Maxwell equations and nonlinear differential equation for the electric field a direct one-dimensional (1D) procedure for calculating hydrodynamic equations are developed and the electric and magnetic field profiles in the plasma are investigated. It is shown that by using the external (dc) magnetic field in constant... 

    Fourier transform infrared spectroscopy and scanning tunneling spectroscopy of porous silicon in the presence of methanol

    , Article Sensors and Actuators, B: Chemical ; Volume 132, Issue 1 , 2008 , Pages 40-44 ; 09254005 (ISSN) Razi, F ; Rahimi, F ; Iraji zad, A ; Sharif University of Technology
    2008
    Abstract
    Porous silicon samples were obtained from p+- and n-type silicon wafers. Gas sensing measurements showed that the electrical conductivity of porous Si on p+- and n-type wafers increases strongly and decreases weakly in the presence of methanol gas, respectively. Scanning tunneling spectroscopy (STS) indicates that the adsorption of methanol on the surface of n-porous silicon decreases the average density of states especially in the band gap. Fourier transform infrared (FTIR) spectroscopy reveals that after methanol exposure partial surface oxidation occurs which produces electron traps as well as methanol adsorption on the porous surfaces. These observations imply that the number of... 

    Scanning tunneling spectroscopy of porous silicon in presence of methanol

    , Article Sensors and Actuators, B: Chemical ; Volume 120, Issue 1 , 2006 , Pages 172-176 ; 09254005 (ISSN) Rahimi, F ; Iraji zad, A ; Vaseghinia, S ; Sharif University of Technology
    2006
    Abstract
    In this research, we used the scanning tunneling spectroscopy (STS) technique to probe the local electrical properties of the surface of meso-porous silicon and its substrate, including local density of states (DOS) in air and in methanol environment to increase our knowledge of sensing phenomena. Meso-porous silicon was prepared on p+-type Si which has high sensitivity toward methanol. Observations revealed that while the surface electrical properties of p+-type Si have not sensible change toward methanol, average local density of state of the porous layer increases after the exposure to methanol especially in the E < EF region. Moreover, large number of surface states is produced in band... 

    Investigation of quantum conductance in semiconductor single-wall carbon nanotubes: Effect of strain and impurity

    , Article Journal of Applied Physics ; Volume 110, Issue 6 , 2011 ; 00218979 (ISSN) Rabiee Golgir, H ; Faez, R ; Pazoki, M ; Karamitaheri, H ; Sarvari, R ; Sharif University of Technology
    2011
    Abstract
    In this paper the effect of strain and impurity on the quantum conductance of semiconducting carbon nanotubes (CNTs) have been studied by ab-initio calculations. The effect of strain and impurity on the CNT conducting behavior and physical characteristics, like density of states (DOS), band structure, and atomic local density of state (LDOS), is considered and discussed separately and simultaneously. Our results show that the quantum conductance of semiconductor CNTs is increased by compression strain, elongation strain, and replacing nitrogen and boron doping in its structure. The amount of increasing in the conductance depends on the type of strain and impurity. Conductance of CNT can be... 

    Ab initio study of electronic effects in the ZnO/TiO2 core/shell interface: Application in dye sensitized solar cells

    , Article RSC Advances ; Vol. 4, issue. 1 , April , 2014 , p. 301-307 Pazoki, M ; Nafari, N ; Taghavinia, N ; Sharif University of Technology
    Abstract
    Core/shell structure of ZnO nanowires coated with a monolayer of TiO 2 is investigated using Density Functional Theory (DFT). The electronic states of the semiconductor is calculated and compared before and after coating of the TiO2 monolayer on a ZnO [101 0] surface. The effect of TiO2 coating induce surface states changes and shifts the conduction and valence band edges to higher energies. Our results, in qualitative agreement with the experimental work of Matt Law et al. (J. Phys. Chem. B, 110, 22652), show an increase in open circuit voltage and a decrease in short circuit current in ZnO/TiO2 core shell dye sensitized solar cells. Regarding the semiconductor density of states (DOS), TiO2... 

    Investigation of the electronic structure of tetragonal B3N3 under pressure

    , Article Applied Physics A: Materials Science and Processing ; Volume 124, Issue 5 , 2018 ; 09478396 (ISSN) Mohamadian, A ; Bagheri, M ; Faez, R ; Sharif University of Technology
    Springer Verlag  2018
    Abstract
    In this paper, we perform self-consistent field relaxation and electronic structure calculations of tetragonal B3N3 based on density functional theory, using LDA pseudopotential in the pressure range between − 30 and + 160 GPa. Although metallic B3N3 has a honeycomb structure, according to the electronic band structure, it has bulk properties (not layered) with effective mass non-interacting electron gas behavior near Fermi level (not Dirac massless) and a small anisotropy, about 0.56 in effective mass in the direction of MA relative to XM. Electronic calculations of the B3N3 under pressure show that increasing positive pressure causes the decrease of Fermi energy and total electronic... 

    Fast nuclear spin relaxation rates in tilted cone Weyl semimetals: Redshift factors from Korringa relation

    , Article Journal of Physics Condensed Matter ; Volume 33, Issue 21 , 2021 ; 09538984 (ISSN) Mohajerani, A ; Faraei, Z ; Jafari, S. A ; Sharif University of Technology
    IOP Publishing Ltd  2021
    Abstract
    Spin lattice relaxation rate is investigated for 3D tilted cone Weyl semimetals (TCWSMs). The nuclear spin relaxation rate is presented as a function of temperature and tilt parameter. We find that the relaxation rate behaves as (1-ζ2)-α with α ≈ 9 where 0 ζ < 1 is the tilt parameter. We demonstrate that such a strong enhancement for ζ ≲ 1 that gives rise to very fast relaxation rates, is contributed by a new hyperfine interactions arising from the tilt itself. This can be attributed to the combination of anisotropy of the Fermi surface and an additional part related to the structure of the spacetime: extracting an effective density of states (DOS) ρ from the Korringa relation, we show that... 

    Coherent conductance in an alternating dot: Exact results

    , Article Physica E: Low-Dimensional Systems and Nanostructures ; Volume 27, Issue 1-2 , 2005 , Pages 227-234 ; 13869477 (ISSN) Mardaani, M ; Esfarjani, K ; Sharif University of Technology
    2005
    Abstract
    In this paper we have calculated the conductance of a periodic quantum dot attached to metallic leads, within the tight-binding (TB) model and in the ballistic regime. We have calculated the Green's function (GF), density of states (DOS) and the coherent transmission coefficient (TC) fully analytically for an alternating quantum dot (A-QD). The quasi-gap, bound states energies, the energy and dot-size dependence of the GF and conductance for the system are also derived. Finally, we show analytically the conductance can be switched between insulating (OFF) and conducting (ON) states by applying a gate voltage. © 2004 Elsevier B.V. All rights reserved  

    Size and temperature dependency on structure, heat capacity and phonon density of state for colloidal silver nanoparticle in 1-ethyl-3-methylimidazolium hexafluorophosphate ionic liquid

    , Article Journal of Molecular Liquids ; Volume 230 , 2017 , Pages 374-383 ; 01677322 (ISSN) Kiani, S ; Taherkhani, F ; Sharif University of Technology
    Abstract
    Phonon detector can be designed by using colloidal silver nanoparticle (Ag NP) in presence of 1-Ethyl-3-methylimidazolium Hexafluorophosphate [EMim][PF6] ionic liquid (IL) via computational technique as the first time for many and high performance biosensors applications. Density functional theory as a quantum chemistry calculation method has been used to get the potential interaction between silver metal and ionic solvent. Molecular dynamics simulation shows that in small sizes of colloidal Ag NP in [EMim][PF6], electrical effect of IL makes one main phonon peak and in big size of colloidal Ag NP, splitting of phonon density occurs with two peaks due to the lower electrical field of IL with... 

    Lateral BN-BCN heterostructure tunneling transistor with large current modulation

    , Article ACS Applied Electronic Materials ; Volume 4, Issue 7 , 2022 , Pages 3520-3524 ; 26376113 (ISSN) Horri, A ; Faez, R ; Sharif University of Technology
    American Chemical Society  2022
    Abstract
    This paper, for the first time, presents a lateral tunneling transistor based on a two-dimensional boron nitride (BN) and hexagonal boron-carbon-nitrogen (hBCN) heterostructure. The device operation is analyzed based on a non-equilibrium Greens Function (NEGF) method and an atomistic tight-binding (TB) model. The TB hopping parameters are achieved by fitting the bandstructure to density functional theory (DFT) results. This model has been used to calculate the electrical characteristics of the device, such as ION/IOFFratio, subthreshold swing, and intrinsic gate-delay time. The results indicate a switching ratio of over eight orders of magnitude, much higher than the previous two-dimensional... 

    Electronic features of rippled graphene

    , Article ICEE 2012 - 20th Iranian Conference on Electrical Engineering ; 2012 , Pages 170-172 ; 9781467311489 (ISBN) Haji Nasiri, S ; Moravvej Farshi, M. K ; Faez, R ; Bajelan, A ; Sharif University of Technology
    2012
    Abstract
    Using tight binding theory the effect of topological ripples on the electronic band structure, density of states (DOS), and Fermi velocity of graphene are studied. The results show that by an increase in the ripple height the graphene Fermi velocity decreases and its DOS increases.- Moreover, we show that an increase in the ripple period causes the graphene band gap and DOS to decrease and its Fermi velocity to increase  

    RKKY interaction in heavily vacant graphene

    , Article Journal of Physics Condensed Matter ; Volume 25, Issue 37 , August , 2013 ; 09538984 (ISSN) Habibi, A ; Jafari, S. A ; Sharif University of Technology
    2013
    Abstract
    Dirac electrons in clean graphene can mediate the interactions between two localized magnetic moments. The functional form of the RKKY interaction in pristine graphene is specified by two main features: (i) an atomic-scale oscillatory part determined by a wavevector → connecting the two valleys; with doping another longer range oscillation appears which arises from the existence of an extended Fermi surface characterized by a momentum scale kF; (ii) an algebraic Rα decay in large distances where the exponent α=-3 is a distinct feature of undoped Dirac sea in two dimensions. In this work, we investigate the effect of a few per cent vacancies on the above properties. Depending on the doping... 

    Theoretical study of the electron transport through the cysteine amino acid nanomolecular wire

    , Article International Journal of Nanoscience ; Volume 7, Issue 2-3 , 2008 , Pages 95-102 ; 0219581X (ISSN) Ganji, M. D ; Aghaie, H ; Gholami, M. R ; Sharif University of Technology
    World Scientific Publishing Co. Pte Ltd  2008
    Abstract
    In this paper, we study the electrical transport and Negative Differential Resistance (NDR) in a single molecular conductor consisting of a cysteine sandwiched between two Au(111) electrodes via the Density Functional Theory-based Nonequilibrium Green's Function (DFT-NEGF) method. We show that (surprisingly, despite their apparent simplicity, these Au/cysteine/Au nanowires are shown to be a convenient NDR device) the smallest two-terminal molecular wire can exhibit NDR behavior to date. Experiments with a conventional or novel self-assembled monolayer (SAM) are proposed to test these predictions. The projected density of states (PDOSs) and transmission coefficients T(E) under various...