vasp.6.2.1 16May21 (build Apr 11 2022 11:03:26) complex MD_VERSION_INFO: Compiled 2022-04-11T18:25:55-UTC in devlin.sd.materialsdesign. com:/home/medea2/data/build/vasp6.2.1/16685/x86_64/src/src/build/gpu from svn 1 6685 This VASP executable licensed from Materials Design, Inc. executed on Lin64 date 2024.02.21 23:02:28 running on 3 total cores distrk: each k-point on 3 cores, 1 groups distr: one band on NCORE= 1 cores, 3 groups -------------------------------------------------------------------------------------------------------- INCAR: SYSTEM = No title PREC = Normal ENCUT = 400.000 IBRION = -1 NSW = 0 ISIF = 2 NELMIN = 2 EDIFF = 1.0e-04 EDIFFG = -0.02 VOSKOWN = 1 NBLOCK = 1 NWRITE = 1 NELM = 200 ALGO = Normal (blocked Davidson) ISPIN = 1 INIWAV = 1 ISTART = 0 ICHARG = 2 LWAVE = .FALSE. LCHARG = .FALSE. ADDGRID = .FALSE. ISMEAR = 1 SIGMA = 0.2 LREAL = Auto LSCALAPACK = .FALSE. RWIGS = 1.41 0.75 0.77 0.32 0.73 NPAR = 3 POTCAR: PAW_PBE Sn_d 06Sep2000 POTCAR: PAW_PBE N 08Apr2002 POTCAR: PAW_PBE C 08Apr2002 POTCAR: PAW_PBE H 15Jun2001 POTCAR: PAW_PBE O 08Apr2002 POTCAR: PAW_PBE Sn_d 06Sep2000 local pseudopotential read in partial core-charges read in partial kinetic energy density read in atomic valenz-charges read in non local Contribution for L= 2 read in real space projection operators read in non local Contribution for L= 2 read in real space projection operators read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in PAW grid and wavefunctions read in number of l-projection operators is LMAX = 6 number of lm-projection operators is LMMAX = 18 POTCAR: PAW_PBE N 08Apr2002 local pseudopotential read in partial core-charges read in partial kinetic energy density read in atomic valenz-charges read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in PAW grid and wavefunctions read in number of l-projection operators is LMAX = 4 number of lm-projection operators is LMMAX = 8 POTCAR: PAW_PBE C 08Apr2002 local pseudopotential read in partial core-charges read in partial kinetic energy density read in atomic valenz-charges read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in PAW grid and wavefunctions read in number of l-projection operators is LMAX = 4 number of lm-projection operators is LMMAX = 8 POTCAR: PAW_PBE H 15Jun2001 local pseudopotential read in atomic valenz-charges read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in PAW grid and wavefunctions read in number of l-projection operators is LMAX = 3 number of lm-projection operators is LMMAX = 5 POTCAR: PAW_PBE O 08Apr2002 local pseudopotential read in partial core-charges read in partial kinetic energy density read in kinetic energy density of atom read in atomic valenz-charges read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 0 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in non local Contribution for L= 1 read in real space projection operators read in PAW grid and wavefunctions read in number of l-projection operators is LMAX = 4 number of lm-projection operators is LMMAX = 8 Optimization of the real space projectors (new method) maximal supplied QI-value = 15.12 optimisation between [QCUT,QGAM] = [ 10.13, 20.41] = [ 28.73,116.64] Ry Optimized for a Real-space Cutoff 1.38 Angstroem l n(q) QCUT max X(q) W(low)/X(q) W(high)/X(q) e(spline) 2 7 10.129 5.880 0.15E-03 0.14E-04 0.57E-07 2 7 10.129 7.804 0.33E-03 0.17E-03 0.10E-06 0 8 10.129 20.557 0.11E-03 0.15E-03 0.82E-07 0 8 10.129 9.400 0.14E-03 0.19E-03 0.10E-06 1 8 10.129 94.178 0.28E-03 0.18E-03 0.13E-06 1 8 10.129 56.401 0.27E-03 0.17E-03 0.13E-06 Optimization of the real space projectors (new method) maximal supplied QI-value = 25.13 optimisation between [QCUT,QGAM] = [ 10.05, 20.36] = [ 28.30,116.06] Ry Optimized for a Real-space Cutoff 1.65 Angstroem l n(q) QCUT max X(q) W(low)/X(q) W(high)/X(q) e(spline) 0 10 10.053 79.467 0.76E-04 0.72E-04 0.56E-06 0 10 10.053 66.151 0.76E-04 0.72E-04 0.55E-06 1 10 10.053 8.350 0.25E-03 0.92E-03 0.41E-05 1 10 10.053 5.531 0.27E-03 0.10E-02 0.45E-05 Optimization of the real space projectors (new method) maximal supplied QI-value = 25.13 optimisation between [QCUT,QGAM] = [ 10.05, 20.36] = [ 28.30,116.06] Ry Optimized for a Real-space Cutoff 1.30 Angstroem l n(q) QCUT max X(q) W(low)/X(q) W(high)/X(q) e(spline) 0 8 10.053 115.676 0.49E-03 0.72E-03 0.18E-06 0 8 10.053 87.132 0.49E-03 0.71E-03 0.18E-06 1 7 10.053 4.429 0.32E-03 0.31E-03 0.18E-06 1 7 10.053 2.733 0.23E-03 0.19E-03 0.20E-06 Optimization of the real space projectors (new method) maximal supplied QI-value = 34.20 optimisation between [QCUT,QGAM] = [ 9.92, 20.18] = [ 27.55,114.04] Ry Optimized for a Real-space Cutoff 1.26 Angstroem l n(q) QCUT max X(q) W(low)/X(q) W(high)/X(q) e(spline) 0 8 9.919 19.460 0.50E-03 0.23E-03 0.29E-06 0 8 9.919 12.209 0.48E-03 0.23E-03 0.28E-06 1 7 9.919 4.655 0.17E-03 0.75E-03 0.30E-06 Optimization of the real space projectors (new method) maximal supplied QI-value = 24.76 optimisation between [QCUT,QGAM] = [ 10.15, 20.30] = [ 28.85,115.39] Ry Optimized for a Real-space Cutoff 1.38 Angstroem l n(q) QCUT max X(q) W(low)/X(q) W(high)/X(q) e(spline) 0 8 10.150 20.381 0.22E-03 0.32E-03 0.29E-06 0 8 10.150 15.268 0.23E-03 0.35E-03 0.30E-06 1 8 10.150 5.964 0.46E-03 0.53E-03 0.21E-06 1 8 10.150 5.382 0.38E-03 0.45E-03 0.19E-06 PAW_PBE Sn_d 06Sep2000 : energy of atom 1 EATOM=-1893.1092 kinetic energy error for atom= 0.0047 (will be added to EATOM!!) PAW_PBE N 08Apr2002 : energy of atom 2 EATOM= -264.5486 kinetic energy error for atom= 0.0736 (will be added to EATOM!!) PAW_PBE C 08Apr2002 : energy of atom 3 EATOM= -147.1560 kinetic energy error for atom= 0.0288 (will be added to EATOM!!) PAW_PBE H 15Jun2001 : energy of atom 4 EATOM= -12.4884 kinetic energy error for atom= 0.0098 (will be added to EATOM!!) PAW_PBE O 08Apr2002 : energy of atom 5 EATOM= -432.3788 kinetic energy error for atom= 0.1156 (will be added to EATOM!!) POSCAR: No title positions in direct lattice No initial velocities read in exchange correlation table for LEXCH = 8 RHO(1)= 0.500 N(1) = 2000 RHO(2)= 100.500 N(2) = 4000 -------------------------------------------------------------------------------------------------------- ion position nearest neighbor table 1 0.572 0.482 0.501- 25 1.94 24 1.98 3 1.98 2 0.686 0.529 0.337- 4 1.37 5 1.38 3 0.627 0.505 0.619- 7 1.28 6 1.39 1 1.98 4 0.763 0.564 0.370- 8 0.96 9 0.96 10 1.06 2 1.37 5 0.630 0.579 0.283- 11 0.93 12 0.94 13 1.03 2 1.38 6 0.592 0.562 0.683- 18 0.95 16 0.97 17 1.02 3 1.39 7 0.660 0.438 0.660- 21 0.98 19 1.04 20 1.05 3 1.28 8 0.780 0.540 0.427- 4 0.96 9 0.807 0.546 0.326- 4 0.96 10 0.768 0.633 0.381- 4 1.06 11 0.666 0.594 0.236- 5 0.93 12 0.608 0.631 0.310- 5 0.94 13 0.572 0.551 0.260- 5 1.03 14 0.408 0.511 0.488- 24 0.94 15 0.575 0.336 0.429- 25 0.89 16 0.634 0.606 0.703- 6 0.97 17 0.539 0.602 0.667- 6 1.02 18 0.576 0.526 0.733- 6 0.95 19 0.707 0.459 0.707- 7 1.04 20 0.687 0.397 0.610- 7 1.05 21 0.618 0.405 0.697- 7 0.98 22 0.689 0.429 0.311- 26 1.20 23 0.639 0.395 0.326- 26 0.86 24 0.459 0.547 0.483- 14 0.94 1 1.98 25 0.556 0.355 0.482- 15 0.89 1 1.94 26 0.661 0.395 0.378- 23 0.86 22 1.20 LATTYP: Found a simple cubic cell. ALAT = 15.0000000000 Lattice vectors: A1 = ( 15.0000000000, 0.0000000000, 0.0000000000) A2 = ( 0.0000000000, 15.0000000000, 0.0000000000) A3 = ( 0.0000000000, 0.0000000000, 15.0000000000) Analysis of symmetry for initial positions (statically): ===================================================================== Subroutine PRICEL returns: Original cell was already a primitive cell. Routine SETGRP: Setting up the symmetry group for a simple cubic supercell. Subroutine GETGRP returns: Found 1 space group operations (whereof 1 operations were pure point group operations) out of a pool of 48 trial point group operations. The static configuration has the point symmetry C_1 . Analysis of symmetry for dynamics (positions and initial velocities): ===================================================================== Subroutine PRICEL returns: Original cell was already a primitive cell. Routine SETGRP: Setting up the symmetry group for a simple cubic supercell. Subroutine GETGRP returns: Found 1 space group operations (whereof 1 operations were pure point group operations) out of a pool of 48 trial point group operations. The dynamic configuration has the point symmetry C_1 . Subroutine INISYM returns: Found 1 space group operations (whereof 1 operations are pure point group operations), and found 1 'primitive' translations ---------------------------------------------------------------------------------------- Primitive cell volume of cell : 3375.0000 direct lattice vectors reciprocal lattice vectors 15.000000000 0.000000000 0.000000000 0.066666667 0.000000000 0.000000000 0.000000000 15.000000000 0.000000000 0.000000000 0.066666667 0.000000000 0.000000000 0.000000000 15.000000000 0.000000000 0.000000000 0.066666667 length of vectors 15.000000000 15.000000000 15.000000000 0.066666667 0.066666667 0.066666667 position of ions in fractional coordinates (direct lattice) 0.572355420 0.481768130 0.501185760 0.685814390 0.528748240 0.336882790 0.626824010 0.505386130 0.619228300 0.763105470 0.564040630 0.369770740 0.629811990 0.578840320 0.283497310 0.591566730 0.562132300 0.683257320 0.660211500 0.438379570 0.660082250 0.779554930 0.540112710 0.426521580 0.806542090 0.546146770 0.325964600 0.767833310 0.633410790 0.381182310 0.665974360 0.594452300 0.235564830 0.607528760 0.631360060 0.309729730 0.571692420 0.550615600 0.259736180 0.407611660 0.510774990 0.488218760 0.574644960 0.336107910 0.429020210 0.634057550 0.606409330 0.702831460 0.538565780 0.601799370 0.667104100 0.575999750 0.525627750 0.732989740 0.706609180 0.459316680 0.706908230 0.686845860 0.396838400 0.610204360 0.617689010 0.405387490 0.697475750 0.688813320 0.428612410 0.311207190 0.639131570 0.395321540 0.325525270 0.459035760 0.546568490 0.483449870 0.556253600 0.355229130 0.481894770 0.660891840 0.394679000 0.378327990 ion indices of the primitive-cell ions primitive index ion index 1 1 2 2 3 3 4 4 5 5 6 6 7 7 8 8 9 9 10 10 11 11 12 12 13 13 14 14 15 15 16 16 17 17 18 18 19 19 20 20 21 21 22 22 23 23 24 24 25 25 26 26 ---------------------------------------------------------------------------------------- KPOINTS: Automatic mesh Automatic generation of k-mesh. Grid dimensions read from file: generate k-points for: 1 1 1 Generating k-lattice: Cartesian coordinates Fractional coordinates (reciprocal lattice) 0.066666667 0.000000000 0.000000000 1.000000000 0.000000000 0.000000000 0.000000000 0.066666667 0.000000000 0.000000000 1.000000000 0.000000000 0.000000000 0.000000000 0.066666667 0.000000000 0.000000000 1.000000000 Length of vectors 0.066666667 0.066666667 0.066666667 Shift w.r.t. Gamma in fractional coordinates (k-lattice) 0.000000000 0.000000000 0.000000000 Subroutine IBZKPT returns following result: =========================================== Found 1 irreducible k-points: Following reciprocal coordinates: Coordinates Weight 0.000000 0.000000 0.000000 1.000000 Following cartesian coordinates: Coordinates Weight 0.000000 0.000000 0.000000 1.000000 -------------------------------------------------------------------------------------------------------- Dimension of arrays: k-points NKPTS = 1 k-points in BZ NKDIM = 1 number of bands NBANDS= 51 number of dos NEDOS = 301 number of ions NIONS = 26 non local maximal LDIM = 6 non local SUM 2l+1 LMDIM = 18 total plane-waves NPLWV = 512000 max r-space proj IRMAX = 2896 max aug-charges IRDMAX= 6973 dimension x,y,z NGX = 80 NGY = 80 NGZ = 80 dimension x,y,z NGXF= 160 NGYF= 160 NGZF= 160 support grid NGXF= 160 NGYF= 160 NGZF= 160 ions per type = 1 2 4 16 3 NGX,Y,Z is equivalent to a cutoff of 8.87, 8.87, 8.87 a.u. NGXF,Y,Z is equivalent to a cutoff of 17.73, 17.73, 17.73 a.u. SYSTEM = No title POSCAR = No title Startparameter for this run: NWRITE = 1 write-flag & timer PREC = normal normal or accurate (medium, high low for compatibility) ISTART = 0 job : 0-new 1-cont 2-samecut ICHARG = 2 charge: 1-file 2-atom 10-const ISPIN = 1 spin polarized calculation? LNONCOLLINEAR = F non collinear calculations LSORBIT = F spin-orbit coupling INIWAV = 1 electr: 0-lowe 1-rand 2-diag LASPH = F aspherical Exc in radial PAW Electronic Relaxation 1 ENCUT = 400.0 eV 29.40 Ry 5.42 a.u. 24.46 24.46 24.46*2*pi/ulx,y,z ENINI = 400.0 initial cutoff ENAUG = 644.9 eV augmentation charge cutoff NELM = 200; NELMIN= 2; NELMDL= -5 # of ELM steps EDIFF = 0.1E-03 stopping-criterion for ELM LREAL = T real-space projection NLSPLINE = F spline interpolate recip. space projectors LCOMPAT= F compatible to vasp.4.4 GGA_COMPAT = T GGA compatible to vasp.4.4-vasp.4.6 LMAXPAW = -100 max onsite density LMAXMIX = 2 max onsite mixed and CHGCAR VOSKOWN= 1 Vosko Wilk Nusair interpolation ROPT = -0.00050 -0.00050 -0.00050 -0.00050 ROPT = -0.00050 Ionic relaxation EDIFFG = -.2E-01 stopping-criterion for IOM NSW = 0 number of steps for IOM NBLOCK = 1; KBLOCK = 1 inner block; outer block IBRION = -1 ionic relax: 0-MD 1-quasi-New 2-CG NFREE = 0 steps in history (QN), initial steepest desc. (CG) ISIF = 2 stress and relaxation IWAVPR = 10 prediction: 0-non 1-charg 2-wave 3-comb ISYM = 2 0-nonsym 1-usesym 2-fastsym LCORR = T Harris-Foulkes like correction to forces POTIM = 0.5000 time-step for ionic-motion TEIN = 0.0 initial temperature TEBEG = 0.0; TEEND = 0.0 temperature during run SMASS = -3.00 Nose mass-parameter (am) estimated Nose-frequenzy (Omega) = 0.10E-29 period in steps = 0.13E+47 mass= -0.514E-26a.u. SCALEE = 1.0000 scale energy and forces NPACO = 256; APACO = 16.0 distance and # of slots for P.C. PSTRESS= 0.0 pullay stress Mass of Ions in am POMASS = 118.71 14.00 12.01 1.00 16.00 Ionic Valenz ZVAL = 14.00 5.00 4.00 1.00 6.00 Atomic Wigner-Seitz radii RWIGS = 1.41 0.75 0.77 0.32 0.73 virtual crystal weights VCA = 1.00 1.00 1.00 1.00 1.00 NELECT = 74.0000 total number of electrons NUPDOWN= -1.0000 fix difference up-down DOS related values: EMIN = 10.00; EMAX =-10.00 energy-range for DOS EFERMI = 0.00 ISMEAR = 1; SIGMA = 0.20 broadening in eV -4-tet -1-fermi 0-gaus Electronic relaxation 2 (details) IALGO = 38 algorithm LDIAG = T sub-space diagonalisation (order eigenvalues) LSUBROT= F optimize rotation matrix (better conditioning) TURBO = 0 0=normal 1=particle mesh IRESTART = 0 0=no restart 2=restart with 2 vectors NREBOOT = 0 no. of reboots NMIN = 0 reboot dimension EREF = 0.00 reference energy to select bands IMIX = 4 mixing-type and parameters AMIX = 0.40; BMIX = 1.00 AMIX_MAG = 1.60; BMIX_MAG = 1.00 AMIN = 0.10 WC = 100.; INIMIX= 1; MIXPRE= 1; MAXMIX= -45 Intra band minimization: WEIMIN = 0.0000 energy-eigenvalue tresh-hold EBREAK = 0.49E-06 absolut break condition DEPER = 0.30 relativ break condition TIME = 0.40 timestep for ELM volume/ion in A,a.u. = 129.81 875.99 Fermi-wavevector in a.u.,A,eV,Ry = 0.458206 0.865884 2.856581 0.209953 Thomas-Fermi vector in A = 1.443392 Write flags LWAVE = F write WAVECAR LDOWNSAMPLE = F k-point downsampling of WAVECAR LCHARG = F write CHGCAR LVTOT = F write LOCPOT, total local potential LVHAR = F write LOCPOT, Hartree potential only LELF = F write electronic localiz. function (ELF) LORBIT = 0 0 simple, 1 ext, 2 COOP (PROOUT), +10 PAW based schemes Dipole corrections LMONO = F monopole corrections only (constant potential shift) LDIPOL = F correct potential (dipole corrections) IDIPOL = 0 1-x, 2-y, 3-z, 4-all directions EPSILON= 1.0000000 bulk dielectric constant Exchange correlation treatment: GGA = -- GGA type LEXCH = 8 internal setting for exchange type VOSKOWN= 1 Vosko Wilk Nusair interpolation LHFCALC = F Hartree Fock is set to LHFONE = F Hartree Fock one center treatment AEXX = 0.0000 exact exchange contribution Linear response parameters LEPSILON= F determine dielectric tensor LRPA = F only Hartree local field effects (RPA) LNABLA = F use nabla operator in PAW spheres LVEL = F velocity operator in full k-point grid LINTERFAST= F fast interpolation KINTER = 0 interpolate to denser k-point grid CSHIFT =0.1000 complex shift for real part using Kramers Kronig OMEGAMAX= -1.0 maximum frequency DEG_THRESHOLD= 0.2000000E-02 threshold for treating states as degnerate RTIME = -0.100 relaxation time in fs (WPLASMAI= 0.000 imaginary part of plasma frequency in eV, 0.658/RTIME) DFIELD = 0.0000000 0.0000000 0.0000000 field for delta impulse in time Orbital magnetization related: ORBITALMAG= F switch on orbital magnetization LCHIMAG = F perturbation theory with respect to B field DQ = 0.001000 dq finite difference perturbation B field LLRAUG = F two centre corrections for induced B field -------------------------------------------------------------------------------------------------------- Static calculation charge density and potential will be updated during run non-spin polarized calculation Variant of blocked Davidson Davidson routine will perform the subspace rotation perform sub-space diagonalisation after iterative eigenvector-optimisation modified Broyden-mixing scheme, WC = 100.0 initial mixing is a Kerker type mixing with AMIX = 0.4000 and BMIX = 1.0000 Hartree-type preconditioning will be used using additional bands 14 real space projection scheme for non local part use partial core corrections calculate Harris-corrections to forces (improved forces if not selfconsistent) use gradient corrections use of overlap-Matrix (Vanderbilt PP) Methfessel and Paxton Order N= 1 SIGMA = 0.20 -------------------------------------------------------------------------------------------------------- energy-cutoff : 400.00 volume of cell : 3375.00 direct lattice vectors reciprocal lattice vectors 15.000000000 0.000000000 0.000000000 0.066666667 0.000000000 0.000000000 0.000000000 15.000000000 0.000000000 0.000000000 0.066666667 0.000000000 0.000000000 0.000000000 15.000000000 0.000000000 0.000000000 0.066666667 length of vectors 15.000000000 15.000000000 15.000000000 0.066666667 0.066666667 0.066666667 k-points in units of 2pi/SCALE and weight: Automatic mesh 0.00000000 0.00000000 0.00000000 1.000 k-points in reciprocal lattice and weights: Automatic mesh 0.00000000 0.00000000 0.00000000 1.000 position of ions in fractional coordinates (direct lattice) 0.57235542 0.48176813 0.50118576 0.68581439 0.52874824 0.33688279 0.62682401 0.50538613 0.61922830 0.76310547 0.56404063 0.36977074 0.62981199 0.57884032 0.28349731 0.59156673 0.56213230 0.68325732 0.66021150 0.43837957 0.66008225 0.77955493 0.54011271 0.42652158 0.80654209 0.54614677 0.32596460 0.76783331 0.63341079 0.38118231 0.66597436 0.59445230 0.23556483 0.60752876 0.63136006 0.30972973 0.57169242 0.55061560 0.25973618 0.40761166 0.51077499 0.48821876 0.57464496 0.33610791 0.42902021 0.63405755 0.60640933 0.70283146 0.53856578 0.60179937 0.66710410 0.57599975 0.52562775 0.73298974 0.70660918 0.45931668 0.70690823 0.68684586 0.39683840 0.61020436 0.61768901 0.40538749 0.69747575 0.68881332 0.42861241 0.31120719 0.63913157 0.39532154 0.32552527 0.45903576 0.54656849 0.48344987 0.55625360 0.35522913 0.48189477 0.66089184 0.39467900 0.37832799 position of ions in cartesian coordinates (Angst): 8.58533130 7.22652195 7.51778640 10.28721585 7.93122360 5.05324185 9.40236015 7.58079195 9.28842450 11.44658205 8.46060945 5.54656110 9.44717985 8.68260480 4.25245965 8.87350095 8.43198450 10.24885980 9.90317250 6.57569355 9.90123375 11.69332395 8.10169065 6.39782370 12.09813135 8.19220155 4.88946900 11.51749965 9.50116185 5.71773465 9.98961540 8.91678450 3.53347245 9.11293140 9.47040090 4.64594595 8.57538630 8.25923400 3.89604270 6.11417490 7.66162485 7.32328140 8.61967440 5.04161865 6.43530315 9.51086325 9.09613995 10.54247190 8.07848670 9.02699055 10.00656150 8.63999625 7.88441625 10.99484610 10.59913770 6.88975020 10.60362345 10.30268790 5.95257600 9.15306540 9.26533515 6.08081235 10.46213625 10.33219980 6.42918615 4.66810785 9.58697355 5.92982310 4.88287905 6.88553640 8.19852735 7.25174805 8.34380400 5.32843695 7.22842155 9.91337760 5.92018500 5.67491985 -------------------------------------------------------------------------------------------------------- k-point 1 : 0.0000 0.0000 0.0000 plane waves: 61445 maximum and minimum number of plane-waves per node : 61445 61445 maximum number of plane-waves: 61445 maximum index in each direction: IXMAX= 24 IYMAX= 24 IZMAX= 24 IXMIN= -24 IYMIN= -24 IZMIN= -24 The following grids will avoid any aliasing or wrap around errors in the Hartre e energy - symmetry arguments have not been applied - exchange correlation energies might require even more grid points - we recommend to set PREC=Normal or Accurate and rely on VASP defaults WARNING: aliasing errors must be expected set NGX to 98 to avoid them WARNING: aliasing errors must be expected set NGY to 98 to avoid them WARNING: aliasing errors must be expected set NGZ to 98 to avoid them serial 3D FFT for wavefunctions parallel 3D FFT for charge: minimum data exchange during FFTs selected (reduces bandwidth)