الدکتور مهدی سلیمانی

CURRICULUM VITAE
• Contents:
–    Personal data
–    Educational background (Degree Date, Institution)
–    Operating systems
–    Programming languages and softwares
–    Computational routine literary (in c++) that I am familiar with
–    Research Interests
–    Computational Methods (My background)
–    Publications
–    Talks
–    Teaching Activities
–    Fellowships, Awards and Honors
–    General Interests
–    References
• Personal data:                                          
–    Surname: Solaimani
–    Name: Mehdi
–    Birth date: April-21-1982  
–    Sex: Male
–    Married status: married    
–    Full address of M.Sc. and B.Sc. institution:
      Department of Physics, KNT University of technology, Tehran, Iran.
      P.O.BOX 16315-1618,
       Fax: +98-021-22853650
–    Full address of present Ph.D. institution:
Faculty of Physics, Shahrood University of technology, Shahrood, Iran
      Fax: +98-0273-3325270
–    Email: soleimani82@yahoo.com
 
• Educational background (Degree Date, Institution):
–    Bachelor of Science: Solid state physics, June 2004,
                                         KNT University of Technology, Tehran, Iran
           
–    Master of Science: Solid state physics, February 2007,
                                   KNT University of Technology, Tehran, Iran
                                       Field of study: Spectral Function of the Nanowire TTF-TCNQ                                                                     (in the Hubbard Model).
                                       Supervisor: Dr. Edris Faizabadi(Iran University of science and                                                               Technology, Tehran, Iran)
                                       Co-Advisor: Dr. Majid Vaeez Zadeh(KNT University of                                                                           Technology, Tehran, Iran)                 
–    Doctor of Philosophy: Solid state physics, March 2013
                                   Field of study: Theoretical investigation of Electronic, magnetic                                                          and optical properties of semiconductor nanostructures.
                                       Supervisors: Dr. Morteza IzadiFard (Shahrood university of                                                                      technology, Shahrood, Iran)
                                                             Prof. Hadi Arabshahi (Mashhad University,                                                                          Mashahd, Iran)
                                       Co-Advisor: Prof. Mohammad Reza Sarkardei(Al Zahra                                                                              University, Tehran, Iran)
• Operating systems
–    Microsoft windows
–    Linux (somewhat)
• Programming languages and Softwares:           
–    C ++ programming language
–    Matlab
–    FORTRAN programming language
–    Visual Basic (somewhat)
• Computational routine literary (in c++) that I am familiar with:           
–    "A Numerical Library in C for Scientists and Engineers" by H.T. Lau
–    "Numerical Analysis Algorithms in C" by Richard L. Burden
–    "Numerical Methods, C Programs" by John H. Mathews
–    "Numerical methods for physicists" by Anthony O’Hare
–    "C Tools for Scientists and Engineers" by Louis Baker
–    "Numerical recipe in c" by William H. Press et al.
–    "Jean-Pierre Moreau" computational package
–    "Numerical analysis programs in c"  
–    LAPACK (in C++ in Windows Operating systems): I need to learn about
• Research Interests:
–    Numerical methods (They are sorted by amount of interest and degree of my knowledge about them):
–    Finite difference method
–    Self consistent solution of the Schrödinger-Poisson equations
–    Transfer matrix method (for 1D Schrödinger equation and tight binding model)
–    Lanczos method
–    Density Matrix Renormalization Group
–    K.P method
–    Non-Equilibrium Green Function method
–    Variational met6hod
–    Numerical solution methods for Schrödinger equation(single and many particles and few body systems e.g. 'few electron Quantum Dots')
–    Molecular dynamics
–    Monte Carlo simulation
–    Physics Fields: (They are sorted by amount of my interest)::
–    Computational classical and Quantum Many particle systems
–    Low dimensional Strongly correlated electron systems
–    Nano-structure systems
–    Quantum magnetism and Spintronics (e.g. spin filtering and polarization effects)
–    Optical properties of Low dimensional systems(e.g. absorption coefficient, refractive index and …)
–    Quantum Transport
• Computational Methods (My background):
–    Exact Diagonalization:
         Programming is not completed. Using a full Diagonalization, Ground state, Magnetization and staggered magnetization and some other properties of a one dimensional XXZ model calculated. Application of this method using orthogonal and non-orthogonal basis function in application to nanostructures like quantum wells and Dots is also done.
–    Lanczos method:
         By using it, ground stated and few excited states of a large symmetric matrix is obtained. Input matrix can be a dense or sparse symmetric matrix. The next goal is to find dynamical correlation functions like photoemission spectral function, optical conductivity or dynamical spin structure factor of low dimensional quantum lattice models like Hubbard, Heisenberg or Ising models.
–    Density Matrix Renormalization Group Method:
      We are working on a new type of it has been called ‘Split up DMRG’ but till no it is not completed. The aim of the project is to present a rapid and accurate version of DMRG for Hubbard type Hamiltonians, and working better for periodic boundary condition. The next goal can be calculation of the dynamical correlation functions like photoemission spectral function, optical conductivity or dynamical spin structure factor of low dimensional quantum lattice models like Hubbard, Heisenberg or Ising models.
–    Numerical Renormalization group method:
      I have calculated spectral function, optical conductivity, and dynamical spin structure factor of a single band one dimensional Hubbard model (not published).
–    Stochastic Renormalization group method:
      I developed a new type of stochastic Renormalization group method for one dimensional xxz system. We are trying to find a reliable substitute for DMRG.
–    Teansfer Matrix Method:
         Transmission, reflectivity and spin polarization of some multiple quantum well system in the presence of Dresselhaus spin-orbit interaction were computed.
–    Quantum transmitting boundary method:
         Transmission, reflectivity and spin polarization of some multiple quantum well system in the presence of Dresselhaus spin-orbit interaction were computed. Next aim is the extension of this method to non-equilibrium green function formalism.
–    non-equilibrium green function formalism:
Derivations of the method for investigation of quantum transport properties of one dimensional system are done.
–    Finite Difference method (FDM)
         It is applied to a quantum dot with a special confining potential and the energy spectrum, ground state and few excited states is obtained (1D FDM). In a 3D application to simulate an exciton confined in a finite quantum well I have tried to calculate exciton binding energy, diamagnetic shift and the geometric effect on it.  By using of this method we have also computed the absorption coefficient and refractive index changes and oscillator strength of some multiple quantum well systems.
–    Self consistent K.P method
         I have written a self consistent six band K.P program for Mn doped GaAs heterostructures (a two dimensional hole gas) in LSDA and Hartree approximations in order to investigate the magnetic properties like spin dependent carrier distributions, curie temperature and spin polarization.
–    Self consistent solution of the Schrödinger-Poisson equation
         By using this method spin polarization and electron density of a two dimensional electron gas confined within some multiple quantum well systems have been investigated.
–    Genetic Algorithm:
         Application to nanostructures (like Quantum wells) is done to calculate wav function, eighn-energies, magnetic properties and etc. Diamagnetic shift and the effect of the Well width, Temperature, Hydrostatic pressure, energy gap, effective mass, Genetic ingredients and … on it are under investigation.
–    Monte Carlo method:
        Using classical one I have calculated the partition function, heat capacity and … for some argon particles in a cubic box.
–    Molecular Dynamics:
         A simulation to simulate cu crystal using Morse potential is written but it is also not completed and I have basic knowledge about tight binding molecular dynamics.
• Publications:
  Journals:
1-    Faizabadi, Edris; M. Soleimani, , New formalism in evaluation of the  ground and few excited states of Hubbard chain nanostructures, Proc. SPIE 6831, (2007) 68311K.
2-    H. Hassanabadi, M. Solaimani and H. Rahimov, Rashba coupling in three-electron-quantum dot: A Numerical Solution, Solid State Communications 151 (2011) 1962.
3-    Majid Hamzavi, Sameer M. Ikhdair and M. Solaimani, A SEMIRELATIVISTIC TREATMENT OF SPINLESS PARTICLES SUBJECT TO THE YUKAWA POTENTIAL WITH ARBITRARY ANGULAR MOMENTA, International Journal of Modern Physics E  21 (2012) 1250016.
4-    H. Hassanabadi, B. H. Yazarloo, S. Zarrinkamar, and M. Solaimani, Approximate Analytical Versus Numerical Solutions of Schrodinger Equation Under Molecular Hua Potential, International Journal of Quantum Chemistry, 112 (2012)3706.
5-    M. Solaimani, M. Izadifard, H. Arabshahi, M. R. Sarkardehi and M. Salmani, Genetic algorithm based diamagnetic shift investigations of the GaAs0.7Sb0.3/GaAs and Al0.3Ga0.7As quantum wells, Journal of Engineering and Technology Research 2 (2010) 245.
6-    M. Solaimani, M. Izadifard, H. Arabshahi, M. R. Sarkardehi and M. Salmani, Some new aspect of the application of Genetic algorithm to investigate nanostructures, Journal of Engineering and Technology Research 2.(2010)245.
7-    M. Solaimani; M. Izadifard; H. Arabshahi; M. R. Sarkardei, Challenges in Application of a Monte Carlo Method to study an Exciton Confined in AlGaAs/GaAs Single Quantum Well, International Journal of Modern Physics B, 26, No. 23 (2012) 1250129.
8-    M. Solaimani, M. Izadifard, H. Arabshahi, M. R. Sarkardehi, A new approach based on genetic algorithm in Schrödinger equation solution for nanostructure applications: the effect of some genetic and Monte Carlo operators, International Journal of the Physical Sciences Vol. 6 (2011) 5364.
9-    M. Solaimani; M. Izadifard; H. Arabshahi; M. R. Sarkardei, “Study of optical non-linear properties of a constant total effective length multiple quantum wells system” Journal of Luminescence 134 (2013) 699.
10-    M. Solaimani; M. Izadifard; H. Arabshahi; M. R. Sarkardei  ,“Effect of the magnetic field on optical properties of GaN/AlN multiple quantum wells”, Journal of Luminescence 134 (2013) 88.
11-    M. Solaimani; M. Izadifard; H. Arabshahi; M. R. Sarkardei  , “Monitoring of the genetic algorithm operators in application to the GaAs0.7Sb0.3/GaAs single quantum well nanostructure “, International Journal of Physical Sciences Vol. 7(2012) 5485.
12-    M. Solaimani; M. Izadifard; H. Arabshahi; M. R. Sarkardei, Magnetic Field Dependence Optical Properties of GaN/AlN Multiple Quantum Wells, Optik,  Optik  124 (2013) 3194.
13-    Solaimani; M. Izadifard;H. Arabshahi; M. R. Sarkardei, Two dimensional Coulomb potential of Confined Excitons in Quantum Well Structures, JOURNAL OF NANO- AND ELECTRONIC PHYSICS, 4  (2012)04012.
14-    M. Solaimani; M. Izadifard; H. Arabshahi; M. R. Sarkardei, Physical Characteristics of an Exciton Confined in a GaAs/AlGaAs Single Quantum well structure 8 (2014 329.
  Conferences
1-    E. Faizabadi , M. Soleimani, Evaluation of The Spectral Function For The Chain Nanostructures TTF-TCNQ , IEEE conference(2006)
2-    Faizabadi, Edris; M. Soleimani; Khayatzadeh, Mohammad Reza, A New Efficient Method in Calculation of the Ground State of Hubbard Chain Nanostructures, Spectroscopy and material properties, Volume, Issue, 18-22 Sept. 2006 Page(s):460 - 460(IEEE proceeding).
3-    E. Faizabadi, M. R. Khayatzadeh, M. Soleimani, Indium Impurity Effects on Optical Gap in Disorder Nanolayer InxGa (1-x) As in the Presence of Spin-Orbit Interaction, 8th, International conference of photonics, Des 13-16, 2006 (Hyderabad - India).
4-    E. Faizabadi, M. R. Khayatzadeh, M. Soleimani, Spin Polarization Investigation in Disordered Structure InxGa (1-x) As in The Presence of Spin-   Orbit Interaction, 11th Annual Iranian physics conference, Aug 28-31, 2006 (Shahrud-Iran)
5-     Faizabadi, Edris; M. Soleimani; Khayatzadeh, Mohammad Reza, Calculation of the Spectral Function of a One Dimensional System by means of a New Recursive Method in the Hubbard Model, the Second Nanotechnology Student Conference, Sep 5-7, 2007(Kashan-Iran)
6-    Faizabadi, Edris; Khayatzadeh Mahani, Mohammad Reza; M. Soleimani, Spin Filtering Effect, Dresselhaus Spin Orbit Coupling Effect on Electron Tunneling through Disordered Superlattice with Zinc-blende Structure, 12th Annual Iranian physics conference, Aug. 27-30, 2007 (Yasuj-Iran).
7-    Faizabadi, Edris; Khayatzadeh Mahani, Mohammad Reza; M. Soleimani, The Influence of the Dresselhaus Spin Orbit Coupling on Spin Polarization by Tunneling through Disorder Semiconductor Superlattice, 2nd international conference on nanostructures, March. 11-14, 2008 (Kish-Iran).
8-    Izadifard, Morteza; Sarkardehi Mohammad Reza; M. Solaimani, A new hybrid method consisting of Genetic algorithm to investigate magnetic properties of nanostructures, Annual Iranian physics conference, sep. 11-14 2010 (Hamedan-Iran).
9-    Solaimani, Mehdi; Izadifard, Morteza; H. Arabshahi; Sarkardehi Mohammad Reza , Variable and Uniform mesh Finite Difference Schema for the investigation of an exciton confined in a GaAsSb/GaAs quantum well with weak type I Conduction band, 17th Annual IASBS Meeting on Condensed Matter Physics, May 26-27, 2011(Zanjan-Iran)
10-    Solaimani, Mehdi; Izadifard, Morteza; H. Arabshahi; Sarkardehi Mohammad Reza , Calculation of Confined Exciton Binding Energy in GaAsSb/GaAs Single Quantum Well by a New Modified Genetic Algorithm, Annual Iranian physics conference, sep. 7-10, 2012 (Yazd-Iran).
11-    Ariani Mohammadiye, Hassan; Ghazi, Mohammad Ebrahim; Izadifard, Morteza; Mehdi Solaimani, Study of NdMnO3 manganite by LSDA and LSDA+U approximations, Annual Iranian physics conference, sep. 7-10, 2012 (Yazd-Iran).
12-    Soleimani, Mehdi;Izadifard, Morteza, Investigation of the temperature effect on spin polarization of a two dimensional electron gas confined within Al0.3Ga0.7As multiple quantum well systems, 11th condensed matter physics conference of Iran, 2013 (shahrood-Iran).
13-     Doustmohammadi, Mahsa1; Masoudi, Amir ali; Solaimani, Mehdi, A reaction diffusion model for the growth of tumor, 11th condensed matter physics conference of Iran, 2013 (shahrood-Iran).
Talks:
Group seminar (01.22.2007 KNT university of Technology, Tehran, Iran) : Numerical methods in low dimensional quantum systems(Lanczos, DMRG, QMC brief overview)
–    Group seminar (05.09.2007 Isfahan university of Technology, Isfahan, Iran) : Calculation of the Spectral Function Using New Recursion Method
–    Group seminar: (05.02.2008 Sharif university of Technology, Tehran, Iran) "Split up DMRG"
–    Group seminar: (11.11.2008 shahrood  university of Technology, shahrood , Iran) " Introduction to DMRG"
–    Group seminar: (20.9.2009 shahrood  university of Technology, shahrood , Iran) " Kinetic Monte Carlo Simulation of Crystal Growth.
–    Group seminar: (11.11.2009 shahrood  university of Technology, shahrood , Iran) " Molecular Dynamics Simulation of Crystal Growth.
–    Group seminar: (5.2.2010 shahrood  university of Technology, shahrood , Iran) " Introduction to Genetic Algorithm.
• Teaching Activities:
•    Semnan University:
–     Computer application in physics (Monte Carlo simulation, Molecular Dynamics simulation, Numerical solution methods for single particle Schrödinger equation, each in one semester)
–     Electromagnetic environments (textbook: F. Wooten, Optical properties of solids),
–    Fundamental Physics I && II
–     General Physics Lab I.  
•    Shahrood University of Technology:
–    General Physics Lab I, Fundumental physics I and II, General physics.  
•    Payam Noor University of Damghan:
–    Computer application in physics(Monte Carlo simulation), Mathematical physics I & II(Jorge arfken), modern physics, general physics II, Special Relativity, (textbook: Robert Resnik), Statistical Mechanic,(textbook: Payam Noor book series), Quantum Physics  I&& II,(textbook: Gasiorowicz ), Analytical classical mechanic,(textbook: Grant R. Fowles), Solid state physics I and II (Kittle).
    Islamic Azad University of Damghan:
–    Basics of computer (ICDL), High school mathematic, Fundamental Physics I ,(textbook: David Halliday & Robert Resnik , 1st vol), Fundamental Physics II,(textbook: David Halliday & Robert Resnik , 3rd vol), General physics,(textbook: Arbitrary), High school physics,(textbook: Arbitrary), General Physics Lab (I & II)
•    Islamic Azad University of Semnan:
–    Physics of electricity and magnetism
•    Institute of technical and vocational higher educational jahade-e-agriculture of Bastam:
–    Mechanical Physics, temperature Physics, general physics
• Fellowships, Awards and Honors:
–    700th rank, Nationwide entrance exam for state universities for free educations of bachelor of science(among 48000 candidates), 2000
–    200th rank, Nationwide entrance exam for state universities for free educations of master of science in physics (among 9000 candidates), 2004
–    1st student researcher in solid state physics, Shahrood University, 2013.
• General Interests:
–    Languages (programming and speaking)
–    Internet
–    Tennis
–    Trip
• References:
–    Dr. F. Taidy: Assistant professor of Physics Department, Faculty of Sciences, KNT University of technology, Tehran, Iran, and San Jose State University, USA             Email :  taidy19@yahoo.com,   farzad.taiedi@sjsu.edu
–    Prof. Hassan Hassanabadi, Associated Professor of Physics Department, Faculty of Physics, Shahrood University of technology, Shahrood, Iran.                                                                Email : hassan.hassanabadi@shahrootut.ac.ir
–    Dr Morteza Izadifard, Assistant Professor of Physics Department, Faculty of Physics, Shahrood University of technology, Shahrood, Iran.                                                                Email : mizadifard@shahrootut.ac.ir
–    Prof. A.R. Niknam; Associated Professor of Laser and Plasma Research Institute of Shahid Beheshti University, Tehran, Iran
Email: a-niknam@cc.sbu.ac.ir, a_r_niknam@yahoo.com
–    Prof. M.R. Sarkardei; Associated Professor of Physics Department,
      Faculty of Physics, Al Zahra University, Tehran, Iran
      Email: mrsarkardei@yahoo.com