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Structural formula: Mg13Al14

Force-field: Al-Mg.eam.fs

Space group : I4/mmm

JARVIS ID: JLMP-1465

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

63.9 64.7 39.6 -0.0 0.0 -0.0
64.7 129.7 64.7 -0.0 0.0 0.0
39.6 64.7 63.9 0.0 0.0 0.0
-0.0 -0.0 0.0 42.5 0.0 -0.0
0.0 0.0 0.0 0.0 12.2 -0.0
-0.0 0.0 0.0 -0.0 -0.0 42.5

Bv: 66.2 GPa

Gv: 25.3 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
Mg 2 1.249 Download cif file
Mg 16 0.699 Download cif file
Mg 8 0.602 Download cif file
Al 16 2.705 Download cif file
Al 8 2.77 Download cif file
Al 4 2.94 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.

Visualize Phonons here
Phonon mode (cm-1) Representation
-0.0111360371 None
-0.0063241796 A' I+R
44.6497605269 A'' I+R
50.345370267 A'' I+R
72.0341653968 A' I+R
93.1570548476 None
95.4101280789 A' I+R
104.553474726 None
112.843306906 None
116.586036098 None
122.006610759 A' I+R
124.854905187 A'' I+R
125.196161869 A'' I+R
127.293026403 A'' I+R
133.246619529 A' I+R
134.791277298 None
144.85350475 A' I+R
148.736748404 None
156.716745719 A'' I+R
159.662464801 A' I+R
165.341347853 A' I+R
177.780701584 None
177.907303113 A' I+R
186.281844866 A' I+R
189.161771985 None
190.106845036 None
191.168108884 None
196.391974328 A'' I+R
197.982565516 A' I+R
198.910476379 None
203.693301936 A' I+R
211.427461555 A'' I+R
216.184252743 A'' I+R
219.303681768 A' I+R
229.487048162 None
237.236495726 A' I+R
238.314028048 A' I+R
248.504101962 None
252.823509015 A' I+R
254.221498131 A' I+R
259.828487961 A'' I+R
259.892614907 None
262.623095939 A' I+R
263.347675663 A' I+R
264.122699763 None
273.20330451 A'' I+R
276.083729827 A' I+R
281.921433877 None
282.43186004 A' I+R
285.148761466 None
293.795631893 A'' I+R
300.8667008 A'' I+R
301.016047067 None
307.053319968 A' I+R
315.159959156 A' I+R
316.89863461 None
322.901650695 None
338.167484867 A'' I+R
339.523406246 A' I+R
343.86324687 A'' I+R
All phonon mode at Gamma point (cm-1)
-0.0111360331
-0.0111360278
-0.0063241752
44.6497605269
50.345370267
72.0341653968
82.5978305322
85.8249393382
93.1570548476
95.4101280789
100.392551759
104.553474726
107.542796796
109.47026158
112.843306906
113.622712852
116.586036098
122.006610759
122.71245361
124.854905187
125.196161869
127.293026403
133.246619529
134.445465988
134.791277298
138.272160936
144.85350475
148.145737706
148.736748404
148.818507779
148.897949232
152.644687513
155.261920439
156.716745719
159.662464801
160.774658114
161.63744326
162.413794135
165.341347853
166.977267367
168.328569589
169.877727508
170.244615648
172.825326582
177.165630315
177.727266057
177.780701584
177.907303113
182.946194712
182.950763806
183.616432554
184.978919789
186.281844866
187.031032623
189.161771985
190.106845036
191.168108884
191.224857192
193.231847922
196.391974328
196.433177329
197.982565516
198.115159636
198.317314224
198.910476379
199.209316277
203.693301936
211.427461555
212.426486918
216.184252743
217.207423468
217.984827778
218.181314973
219.303681768
223.303668133
223.808534301
229.487048162
237.236495726
238.314028048
248.504101962
250.780580578
252.104906779
252.823509015
254.189160973
254.221498131
259.828487961
259.892614907
262.623095939
263.347675663
264.122699763
266.083866016
268.523517253
273.20330451
273.873186119
276.083729827
276.893563983
277.282292598
278.412736806
281.921433877
282.43186004
285.148761466
286.111376086
287.766503178
293.795631893
295.014381946
299.453989219
300.8667008
301.016047067
307.053319968
310.316598537
315.159959156
316.89863461
322.901650695
328.770966572
338.167484867
338.874577101
339.523406246
341.062083231
343.86324687
368.306988371
382.991690091

See also

Links to other databases or papers are provided below

JVASP-11954

mp-12766

Energy above hull from mp (eV): 0.0793072083856