225 research outputs found
Theoretical and computational studies of nano-structures and nanomaterials
Theoretical analysis and computer simulations have proven to be cost-effective and powerful tools in scientific studies of materials, particularly at nano-scale where synthesis of nano-structures, interpretation of their observed character and exploration of new structures are not always straightforward. We present here fundamental principles of techniques used today for computational simulations of materials, their capabilities and limitations. We then illustrate efficacy of such studies through review of their applications to nano-structures of oxide materials, carbon and boron nitride based nano-tubes and mechanical behavior of nano-structured materials. We finally present a wish-list of new tools and augmentation of existing tools that would allow expansion of the range of applications of computer simulations to nano-structures and materials
A first principles study of wurtzite-structure MnO
We present results of a density functional theory study of MnO in the
wurtzite structure. Our motivation is provided by recent experiments reporting
ferromagnetism in Mn-doped wurtzite structure ZnO. We find that wurtzite MnO a)
is not strongly energetically disfavored as compared with the ground state
rocksalt MnO, b) shows strong magnetostructural coupling and c) has a
piezoelectric response that is larger than that of ZnO. These predictions augur
well for the creation of ferromagnetic piezoelectric semiconductor based on
Mn-doped ZnO
Anisotropy of the Stone-Wales Defect and Warping of Graphene Nano-ribbons: A First-principles Analysis
Stone-Wales (SW) defects, analogous to dislocations in crystals, play an
important role in mechanical behavior of -bonded carbon based materials.
Here, we show using first-principles calculations that a marked anisotropy in
the interaction among the SW defects has interesting consequences when such
defects are present near the edges of a graphene nano-ribbon: depending on
their orientation with respect to edge, they result in compressive or tensile
stress, and the former is responsible to depression or warping of the graphene
nano-ribbon. Such warping results in delocalization of electrons in the defect
states.Comment: 8 page
Polarization Rotation, Switching and E-T phase diagrams of BaTiO: A Molecular Dynamics Study
We use molecular dynamics simulations to understand the mechanisms of
polarization switching in ferroelectric BaTiO achieved with external
electric field. For tetragonal and orthorhombic ferroelectric phases, we
determine the switching paths, and show that polarization rotation through
intermediate monoclinic phases (a) facilitates switching at low fields (b) is
responsible for a sharp anisotropy in polarization switching. We develop
understanding of this through determination of detailed electric
field-temperature phase diagrams, that are fundamental to technological
applications based on electromechanical and switching response of
ferroelectrics
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