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Dive into the research topics where Ido Azuri is active.

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Featured researches published by Ido Azuri.


Journal of Chemical Physics | 2014

Inter-layer potential for hexagonal boron nitride

Itai Leven; Ido Azuri; Leeor Kronik; Oded Hod

A new interlayer force-field for layered hexagonal boron nitride (h-BN) based structures is presented. The force-field contains three terms representing the interlayer attraction due to dispersive interactions, repulsion due to anisotropic overlaps of electron clouds, and monopolar electrostatic interactions. With appropriate parameterization, the potential is able to simultaneously capture well the binding and lateral sliding energies of planar h-BN based dimer systems as well as the interlayer telescoping and rotation of double walled boron-nitride nanotubes of different crystallographic orientations. The new potential thus allows for the accurate and efficient modeling and simulation of large-scale h-BN based layered structures.


Journal of Chemical Theory and Computation | 2016

Interlayer Potential for Graphene/h-BN Heterostructures

Itai Leven; Tal Maaravi; Ido Azuri; Leeor Kronik; Oded Hod

We present a new force-field potential that describes the interlayer interactions in heterojunctions based on graphene and hexagonal boron nitride (h-BN). The potential consists of a long-range attractive term and a short-range anisotropic repulsive term. Its parameters are calibrated against reference binding and sliding energy profiles for a set of finite dimer systems and the periodic graphene/h-BN bilayer, obtained from density functional theory using a screened-exchange hybrid functional augmented by a many-body dispersion treatment of long-range correlation. Transferability of the parametrization is demonstrated by considering the binding energy of bulk graphene/h-BN alternating stacks. Benchmark calculations for the superlattice formed when relaxing the supported periodic heterogeneous bilayer provide good agreement with both experimental results and previous computational studies. For a free-standing bilayer we predict a highly corrugated relaxed structure. This, in turn, is expected to strongly alter the physical properties of the underlying monolayers. Our results demonstrate the potential of the developed force-field to model the structural, mechanical, tribological, and dynamic properties of layered heterostructures based on graphene and h-BN.


Angewandte Chemie | 2015

Unusually Large Young's Moduli of Amino Acid Molecular Crystals.

Ido Azuri; Elena Meirzadeh; David Ehre; Sidney R. Cohen; Andrew M. Rappe; Meir Lahav; Igor Lubomirsky; Leeor Kronik

Youngs moduli of selected amino acid molecular crystals were studied both experimentally and computationally using nanoindentation and dispersion-corrected density functional theory. The Young modulus is found to be strongly facet-dependent, with some facets exhibiting exceptionally high values (as large as 44 GPa). The magnitude of Youngs modulus is strongly correlated with the relative orientation between the underlying hydrogen-bonding network and the measured facet. Furthermore, we show computationally that the Young modulus can be as large as 70-90 GPa if facets perpendicular to the primary direction of the hydrogen-bonding network can be stabilized. This value is remarkably high for a molecular solid and suggests the design of hydrogen-bond networks as a route for rational design of ultra-stiff molecular solids.


Nature Communications | 2016

Origin and structure of polar domains in doped molecular crystals

Elena Meirzadeh; Ido Azuri; Yubo Qi; David Ehre; Andrew M. Rappe; Meir Lahav; Leeor Kronik; Igor Lubomirsky

Doping is a primary tool for the modification of the properties of materials. Occlusion of guest molecules in crystals generally reduces their symmetry by the creation of polar domains, which engender polarization and pyroelectricity in the doped crystals. Here we describe a molecular-level determination of the structure of such polar domains, as created by low dopant concentrations (<0.5%). The approach comprises crystal engineering and pyroelectric measurements, together with dispersion-corrected density functional theory and classical molecular dynamics calculations of the doped crystals, using neutron diffraction data of the host at different temperatures. This approach is illustrated using centrosymmetric α-glycine crystals doped with minute amounts of different L-amino acids. The experimentally determined pyroelectric coefficients are explained by the structure and polarization calculations, thus providing strong support for the local and global understanding of how different dopants influence the properties of molecular crystals.


Journal of Materials Chemistry C | 2018

The effect of ionic composition on acoustic phonon speeds in hybrid perovskites from Brillouin spectroscopy and density functional theory

Irina V. Kabakova; Ido Azuri; Zhuoying Chen; Pabitra K. Nayak; Henry J. Snaith; Leeor Kronik; Carl Paterson; Artem A. Bakulin; David A. Egger

Hybrid organic-inorganic perovskites (HOIPs) have recently emerged as highly promising solution-processable materials for photovoltaic (PV) and other optoelectronic devices. HOIPs represent a broad family of materials with properties highly tuneable by the ions that make up the perovskite structure as well as their multiple combinations. Interestingly, recent high-efficiency PV devices using HOIPs with substantially improved long-term stability have used combinations of different ionic compositions. The structural dynamics of these systems are unique for semiconducting materials and are currently argued to be central to HOIPs stability and charge-transport properties. Here, we studied the impact of ionic composition on phonon speeds of HOIPs from Brillouin spectroscopy experiments and density functional theory calculations for FAPbBr


Beilstein Journal of Organic Chemistry | 2018

Terahertz spectroscopy of 2,4,6-trinitrotoluene molecular solids from first principles

Ido Azuri; Anna Hirsch; Anthony M. Reilly; Alexandre Tkatchenko; Shai Kendler; Oded Hod; Leeor Kronik

_3


Advanced Materials | 2018

Bioinspired Flexible and Tough Layered Peptide Crystals

Lihi Adler-Abramovich; Zohar A. Arnon; XiaoMeng Sui; Ido Azuri; Hadar Yosef Cohen; Oded Hod; Leeor Kronik; Linda J. W. Shimon; H. Daniel Wagner; Ehud Gazit

, MAPbBr


Nature Communications | 2017

Erratum: Origin and structure of polar domains in doped molecular crystals.

Elena Meirzadeh; Ido Azuri; Yubo Qi; David Ehre; Andrew M. Rappe; Meir Lahav; Leeor Kronik; Igor Lubomirsky

_3


Journal of Chemical Physics | 2016

Real-space pseudopotential method for computing the vibrational Stark effect

Benjamin Garrett; Ido Azuri; Leeor Kronik; James R. Chelikowsky

, MAPbCl


Journal of the American Chemical Society | 2014

Why Are Diphenylalanine-Based Peptide Nanostructures so Rigid? Insights from First Principles Calculations

Ido Azuri; Lihi Adler-Abramovich; Ehud Gazit; Oded Hod; Leeor Kronik

_3

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Leeor Kronik

Weizmann Institute of Science

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David Ehre

Weizmann Institute of Science

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Elena Meirzadeh

Weizmann Institute of Science

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Igor Lubomirsky

Weizmann Institute of Science

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Meir Lahav

Weizmann Institute of Science

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Andrew M. Rappe

University of Pennsylvania

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Anna Hirsch

Weizmann Institute of Science

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