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Structural formula: Co

Force-field: Co_PurjaPun_2012.eam.alloy

Space group : P1

JARVIS ID: JLMP-1121

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Elastic tensor (GPa)

Elastic tensor for the conventional cell of the system were calculated with LAMMPS in.elastic script at 0 K [Source] . Similar script can be used for temperature dependent elastic constants and will be available here soon. WARNING! Please note that the starting lattice parameters of crystal structures were taken from density functional theory (DFT) and not from experiments. Generic minimization parameters were chosen for LAMMPS run rather than testing them for each individual case such as energy convergence criterion and so on. Hence, there are chances that the calculation gets trapped in a local energy minima. Please read carefully the assumptions taken during calculations in the in.elastic script and use the data at your own risk

301.0 168.3 95.1 2.0 -2.1 -20.5
168.3 293.1 107.4 20.0 -4.5 -1.1
95.1 107.4 349.7 -37.7 -23.3 -3.3
2.0 20.0 -37.7 -235.7 -5.2 4.8
-2.1 -4.5 -23.3 -5.2 4.4 45.5
-20.5 -1.1 -3.3 4.8 45.5 78.1

Bv: 187.3 GPa

Gv: 7.6 GPa

Vacancy-formation energy (eV)

Vacancy formation energies were calculated by deleting the symmterically distinct atoms in the system [Source]. In the table, vacancy forming element, its multiplicity, and defect-formation energy are given. The reference element cohesive energies were calculated with the most stable structure for the element found on materials project database. Defect structures were constructed with the fully-relaxed bulk system as input. For defect-structures energetics calculations, constant volume ensemble was used. We impose the defect structures to be at least 1.5 nm large in all directions.

Element Mult. Value
Co 1 1.038 Download cif file
Co 1 1.38 Download cif file
Co 1 0.632 Download cif file
Co 1 -0.488 Download cif file
Co 1 1.394 Download cif file
Co 1 1.2 Download cif file
Co 1 0.88 Download cif file
Co 1 1.737 Download cif file
Co 1 0.637 Download cif file
Co 1 1.366 Download cif file
Co 1 1.526 Download cif file
Co 1 1.772 Download cif file
Co 1 1.375 Download cif file
Co 1 1.495 Download cif file
Co 1 1.169 Download cif file
Co 1 0.59 Download cif file
Co 1 1.553 Download cif file
Co 1 0.632 Download cif file
Co 1 1.309 Download cif file
Co 1 1.306 Download cif file
Co 1 1.224 Download cif file
Co 1 1.371 Download cif file
Co 1 1.465 Download cif file
Co 1 1.192 Download cif file
Co 1 1.143 Download cif file
Co 1 1.064 Download cif file
Co 1 -0.058 Download cif file
Co 1 1.002 Download cif file
Co 1 1.357 Download cif file
Co 1 0.082 Download cif file
Co 1 1.406 Download cif file
Co 1 1.383 Download cif file
Co 1 1.244 Download cif file
Co 1 1.445 Download cif file
Co 1 0.912 Download cif file
Co 1 0.676 Download cif file
Co 1 1.507 Download cif file
Co 1 1.53 Download cif file
Co 1 0.768 Download cif file
Co 1 -0.262 Download cif file
Co 1 1.336 Download cif file
Co 1 1.002 Download cif file
Co 1 1.042 Download cif file
Co 1 1.532 Download cif file
Co 1 0.977 Download cif file
Co 1 1.129 Download cif file

Surface energy (J/m2)

Surface energies were calculated for symmterically distinct crystal surfaces . In the table, (hkl) indices and surface enegies are given. For surface-structure energetics, constant volume ensemble was used. We impose the slab thickness to be at least 2 nm and vaccum size of 2.5 nm. The maximum miller index is taken as 3.