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Structural formula: Te2 Mo2 W1 Se2 S2

Functional: optB88-vDW

Space group : Cm

Calculation type: Bulk

JARVIS ID: JVASP-28510

Formation energy/atom (eV): -0.517

Relaxed energy/atom (eV): -4.6304

Primitive cell lattice parameters

a 3.356 Å , b 3.355 Å , c 20.481 Å

α 92.14 ° , β 90.0 ° , γ 120.006 °

Conventional cell lattice parameters

a 5.811 Å , b 3.356 Å , c 20.481 Å

α 90.0 ° , β 92.471 ° , γ 90.0 °

Download input files

Convergence

Calculations are done using VASP software. Convergence on KPOINTS and ENCUT is done with respect to total energy of the system within 0.001 eV tolerance. Please note convergence on KPOINTS and ENCUT is generally done for target properties, but here we assume energy-convergence with 0.001 eV should be sufficient for other properties also. The points on the curves are obtained with single-point calculation (nuber of ionic steps,NSW=1). However, for very accurate calculations, NSW>1 might be needed.

Structural analysis

The following shows the X-ray diffraction (XRD) pattern and the Radial distribution function (RDF) plots. XRD peaks should be comparable to experiments for bulk structures. Relative intensities may differ.

Electronic structure

The following shows the electronic density of states and bandstructure. DFT is generally predicted to underestimate bandgap of materials. Accurate band-gaps are obtained with higher level methods (with high computational requirement) such as HSE, GW, which are under progress. Total DOS, Orbital DOS and Element dos buttons are provided for density of states options. Energy is rescaled to make Fermi-energy zero. In the bandstructure plot, spin up is is shown with blue lines while spin down are shown with red lines. Non-degenerate spin-up and spin-down states (if applicable) would imply a net orbital magnetic moment in the system. Fermi-occupation tolerance for bandgap calculation is chosen as 0.001.

High-symmetry kpoints based bandgap (eV): 0.0933D

Optical properties Semi-local

Incident photon energy dependence of optical is shown below. Only interband optical transitions are taken into account.Please note the underestimatation of band-gap problem with DFT will reflect in the spectra as well. For very accurate optical properties GW/BSE calculation would be needed, which is yet to be done because of their very high computational cost. Optical properties for layered materials needs to be rescaled with the actual thickness to simulation z-box ratio. Absorption coeffiecient is in cm-1 unit.

Dense k-mesh based bandgap is : 0.2965 eV

Optical properties METAGGA-MBJ

Single point DFT calculation was carried out with meta-gga MBJ functional. This should give reasonable bandgap, and optical properties assuming the calculation was properly converged. Incident photon energy dependence of optical is shown below. Only interband optical transitions are taken into account.

MBJ bandgap is : 0.5246 eV

Elastic tensor and derived phonon properties

Elastic tensor calculated for the conventional cell of the system with finite-difference method. For layered materials, the elastic constants are rescaled with respect to vacuum padding (see the input files) and the units for elastic coefficients are in N/m. Phonons obtained from this calcuation are also shown.

WARNING: Please note this may not be the exact phonon modes of the system as we did not test the cell-size dependence of phonons yet. At least 1.2 nm x1.2 nm x1.2 nm or more is needed for obtaining reliable phonon spectrum. For systems having primitive-cell phonon representation tables, I denotes infrared activity and R denotes Raman active modes (where applicabale). The minimum thermal conductivity was calculated using elastic tensor information following Clarke and Cahill formalism.

Bulk Modulus BV 55.178 GPa

Shear Modulus GV 28.167 GPa

157.5 48.5 10.4 -0.0 -0.6 0.0
48.5 159.1 11.4 0.0 0.5 -0.0
10.4 11.4 39.4 -0.0 -6.0 0.0
-0.0 0.0 -0.0 54.2 -0.0 2.7
-0.6 0.5 -6.0 -0.0 -0.1 0.0
0.0 -0.0 0.0 2.7 0.0 -8.5
Phonon mode (cm-1)
-11.2186199755
-5.3373398744
-0.0594778643
-0.0496079659
0.1127318796
12.952803606
16.3449018924
31.6784381681
43.0816613221
84.9806496832
95.5049857201
100.293121118
109.82373744
116.63127687
120.184201139
121.151699079
123.463545917
129.096956903
140.403658914
158.039787744
159.948850899
165.502397838
166.551364552
169.366169103
178.978421524
179.758310027
188.105599787
202.271434772
218.996141655
240.692430385
241.392115876
244.162716539
246.669493872
258.550122527
274.358105274
275.732120781
277.681188452
280.984261693
281.931313525
283.966460475
287.388495989
287.69143157
299.8354577
303.160892156
305.579839012
315.184749498
325.502387593
327.467046077
334.235459857
340.572346541
352.062372206
398.097239808
405.105976645
409.672590983

Point group

point_group_type: m

Visualize Phonons here
Phonon mode (cm-1) Representation
-11.2186199755 A'' I+R
-5.3373398744 A' I+R
-0.0594778647 A'' I+R
-0.0496079658 A' I+R
0.1127318796 A' I+R
12.952803606 A'' I+R
16.3449018924 A' I+R
31.6784381681 A' I+R
43.0816613221 A' I+R
120.184201139 A'' I+R
121.151699079 A' I+R
165.502397838 A'' I+R
169.366169103 A' I+R
179.758310027 A' I+R
240.692430385 A'' I+R
241.392115876 A' I+R
246.669493872 A' I+R
274.358105274 A'' I+R
280.984261693 A' I+R
281.931313525 A'' I+R
283.966460475 A' I+R
303.160892156 A' I+R
325.502387593 A'' I+R
327.467046077 A' I+R
352.062372206 A' I+R
405.105976645 A' I+R
409.672590983 A' I+R

Magnetic moment

The orbital magnetic moment was obtained after SCF run. Please note no DFT+U parameters were taken into account.

0.061 μB

Reference


POSCAR-mp-1025778.vasp
mp-1025778 MP link