open visualization tool (ovito) (OVITO GmbH)
90
Structured Review
OVITO GmbH
open visualization tool (ovito)
Open Visualization Tool (Ovito), supplied by OVITO GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/open+visualization+tool/open+visualization+tool/pm40548516-90-23-26
Average 90 stars, based on 1 article reviews
Open Visualization Tool (Ovito), supplied by OVITO GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/open+visualization+tool/open+visualization+tool/pm40548516-90-23-26
Average 90 stars, based on 1 article reviews
open visualization tool (ovito) - by Bioz Stars,
2026-09
90/100 stars
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other:Article Title: Magnetization and superparamagnetic behavior of FeCu nanoalloys at room temperature via synthesis and simulation Article Snippet: Atomic visualization and Article Title: Temperature and loading-rate dependent critical stress intensity factor of dislocation nucleation from crack tip: Atomistic insights into cracking at slant twin boundaries in Nano-twinned TiAl alloys Article Snippet: All the simulations are performed by AMMPS code and the evolution of the atomic structure is visualzed by an open Article Title: Porosity dependence of mechanical properties of titanium nanofoams. Article Snippet: Context This study employs molecular dynamics (MD) simulations to investigate the mechanical properties and deformation mechanisms of titanium (Ti) nanofoam under uniaxial tensile loading.. The effects of porosity (ranging from 20 to 50%), strain rate (from 5 × 108 to 5 × 109 s−1), and temperature (from 300 to 900 K) on the tensile response are systematically examined.. The results reveal that increasing porosity significantly reduces the ultimate tensile strength (UTS) and elastic modulus, while intensifying localized shear strain and stress concentration. Article Title: Si-Cl 2 -Ar + Atomic Layer Etching Window: A Fundamental Study Using Molecular Dynamics Simulations and a Reduced Order Model. Article Snippet: Silicon (Si) atomic layer etching (ALE) by alternating exposure to chlorine gas (Cl2) and argon ions (Ar+) is studied by using molecular dynamics (MD) simulations and a reduced order model (ROM).. The purpose of this study is to elucidate the properties of the ALE window, a range of ion energies where the amount of Si etched over a series of cycles is nonzero and nearly independent of ion energy.. Experimental studies of the Si−Cl2−Ar ALE system report contradictory results related to the ALE window’s ion energy range. Article Title: Atomic-Scale Investigation of the Tribological Behaviors of Titanium Alloy Interfaces with 2D Nanomaterials. Article Snippet: Titanium alloys have been widely used as friction materials.. However, the tribological mechanisms still lack profound insight into the friction process at the atomic scale.. In this work, the effects of tribological conditions, surface roughness, and twodimensional (2D) nanomaterials on the tribological behaviors of titanium alloys were investigated by molecular dynamics simulations. Article Title: Origin of Stabilization of Ligand-Centered Mixed Valence Ruthenium Azopyridine Complexes: DFT Insights for Neuromorphic Applications. Article Snippet: 1992, 97 (4), 2635−2643. (37) Stukowski, A. Visualization and Analysis of Atomistic Simulation Data with Membrane:Article Title: Molecular dynamics of complex neuronal cell membrane deformation and failure under different traumatic brain injury scenarios. Article Snippet: Neuronal membrane mechanical deformation and disruption are nanoscale damage mechanisms that critically affect brain cell function and viability during traumatic brain injury (TBI).. The nanoscale cellular impairments are elusive in experiments and necessitate computational approaches such as molecular dynamics (MD) simulations.. Implementing MD simulations, the current study investigates the mechanical deformation, failure, and mechanoporation damage of complex neuronal membrane systems under different strain rates and strain states in the context of TBI. |