JARVIS-FF NIST Disclaimer

Structural formula: AlCu3

Force-field: AlCu.eam.alloy

Space group : Pmmn

JARVIS ID: JLMP-1099

Download input files

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

209.2 84.3 81.5 -0.0 -0.0 -0.0
84.3 179.1 110.9 -0.0 -0.0 -0.0
81.5 110.9 179.7 -0.0 -0.0 -0.0
-0.0 -0.0 -0.0 31.5 -0.0 -0.0
-0.0 -0.0 -0.0 -0.0 33.2 0.0
-0.0 -0.0 -0.0 -0.0 0.0 32.5

Bv: 124.6 GPa

Gv: 38.9 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
Al 2 1.756 Download cif file
Cu 2 1.247 Download cif file
Cu 4 1.244 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.

Surface Value
(1 0 0) 1.135 Download cif file
(1 1 2) 1.19 Download cif file
(1 2 0) 1.197 Download cif file
(0 1 2) 1.197 Download cif file
(0 1 0) 1.217 Download cif file
(3 1 0) 1.281 Download cif file
(1 1 3) 1.284 Download cif file
(1 2 3) 1.285 Download cif file
(2 2 3) 1.286 Download cif file
(3 0 1) 1.3 Download cif file
(1 1 0) 1.301 Download cif file
(2 1 2) 1.304 Download cif file
(0 1 1) 1.307 Download cif file
(2 1 3) 1.31 Download cif file
(0 0 1) 1.312 Download cif file
(2 1 0) 1.314 Download cif file
(0 1 3) 1.315 Download cif file
(3 1 2) 1.318 Download cif file
(2 3 1) 1.32 Download cif file
(2 3 3) 1.32 Download cif file
(1 3 0) 1.321 Download cif file
(3 2 0) 1.327 Download cif file
(0 2 1) 1.332 Download cif file
(1 1 1) 1.333 Download cif file
(3 1 3) 1.333 Download cif file
(3 1 1) 1.335 Download cif file
(2 0 1) 1.339 Download cif file
(1 3 1) 1.341 Download cif file
(3 2 3) 1.344 Download cif file
(1 2 2) 1.344 Download cif file
(0 3 1) 1.349 Download cif file
(1 2 1) 1.349 Download cif file
(1 3 3) 1.351 Download cif file
(0 2 3) 1.355 Download cif file
(1 0 3) 1.357 Download cif file
(2 1 1) 1.36 Download cif file
(2 3 0) 1.362 Download cif file
(3 0 2) 1.371 Download cif file
(1 3 2) 1.372 Download cif file
(3 2 2) 1.372 Download cif file
(3 3 1) 1.372 Download cif file
(2 0 3) 1.376 Download cif file
(3 3 2) 1.376 Download cif file
(2 2 1) 1.378 Download cif file
(3 2 1) 1.391 Download cif file
(2 3 2) 1.407 Download cif file
(1 0 1) 1.41 Download cif file
(1 0 2) 1.42 Download cif file
(0 3 2) 1.425 Download cif file

Phonon

Phonons were obtained by making an interface of JARVIS-FF with Phonopy package at 0 K [Source] . For deformed-structures, constant volume ensemble was used. The deofrmed structures were taken of at least 1.5 nm size in all directions. The band-indices for phonon bandstructure was obtained with Pymatgen. The phonon representation were obtained with phonopy. "I" and "R" denotes infrared and Raman active modes respectively

Visualize Phonons here
Phonon mode (cm-1) Representation
-0.0147772483 B1u I
-0.0034807772 None
101.665125423 B3g R
106.276574044 Ag R
112.19284062 B3g R
128.176152827 B1g R
129.262145265 Au
143.834841157 B1u I
147.541614319 B1g R
160.08182805 Ag R
170.476220895 B1u I
171.977512572 B2u I
173.961572121 B3g R
186.198588131 B3u I
188.689216276 B2g R
193.031653375 Ag R
202.549458678 B2u I
283.673332191 B3u I
296.000067876 B1u I
296.282076298 B2u I
297.296881636 B3g R
298.808856855 Ag R
301.284937803 B1g R
All phonon mode at Gamma point (cm-1)
-0.0147772478
-0.0034807774
-0.0034065029
101.665125423
106.276574044
112.19284062
128.176152827
129.262145265
143.834841157
147.541614319
160.08182805
170.476220895
171.977512572
173.961572121
186.198588131
188.689216276
193.031653375
202.549458678
283.673332191
296.000067876
296.282076298
297.296881636
298.808856855
301.284937803

See also

Links to other databases or papers are provided below

None

mp-12802

Energy above hull from mp (eV): 0.0