VASP Density of States (DOS) Calculation

SkillDev tools

Compute total and projected density of states. Requires a three-step workflow: geometry optimization, self-consistent single point, and DOS analysis.

Available today. Use it from your connected AI after setup.

Connect ahel once, and every AI you use reads what you have installed.

Then ask your AI: use the VASP Density of States (DOS) Calculation skill

About this capability

Density of states (DOS) workflow in VASP. Three-step process for accurate total and projected DOS, d-band center analysis.

What this skill tells your AI

The instructions your AI receives, as published by hello-qm/catgo-lrg in server/catgo/workflow/skills/vasp/dos/SKILL.md and read by ahel’s review.

Compute total and projected density of states. Requires a three-step workflow: geometry optimization, self-consistent single point, and DOS analysis.

Why Three Steps?

  1. geo_opt — relax the structure to equilibrium
  2. single_point — SCF with ISMEAR=-5 (tetrahedron method) and high NEDOS for accurate DOS
  3. dos_analysis — extract d-band center, orbital projections, and plot data

The tetrahedron method (ISMEAR=-5) gives the most accurate DOS but is incompatible with geometry optimization (forces are not well-defined). That is why a separate single point is needed.

Full DOS Workflow

from catgo.workflow import Workflow
from catgo.workflow.builtins import geo_opt, single_point, dos_analysis

wf = Workflow("RuO2 DOS")
struct = wf.add_task("structure_input", structure=structure_json)

# Step 1: Optimize geometry
opt = wf.add_task(geo_opt, structure=struct.output.structure,
                  ISIF=2, system_name="relax")

# Step 2: Single point with DOS settings
sp = wf.add_task(single_point, structure=opt.output.structure,
                 ISMEAR=-5,       # Tetrahedron method with Blochl corrections
                 NEDOS=3001,      # Dense energy grid (default is 301)
                 LORBIT=11,       # Projected DOS per atom and orbital
                 LCHARG=True,     # Write charge density
                 EDIFF=1e-6,      # Tight convergence
                 system_name="DOS")

# Step 3: Analyze DOS
dos = wf.add_task(dos_analysis, data=sp.output.energy,
                  d_band=True, system_name="DOS_analysis")

wf.submit()

MCP Workflow

# Create workflow
catgo_workflow_engine(action="create", params={"name": "DOS calculation"})

# Step 1: Input structure
catgo_workflow_engine(action="add_task", params={
  "workflow_id": "wf_xxx",
  "task_type": "structure_input",
  "structure": "<json>"
})

# Step 2: Geometry optimization
catgo_workflow_engine(action="add_task", params={
  "workflow_id": "wf_xxx",
  "task_type": "geo_opt",
  "software": "vasp",
  "structure": "{{t_001.output.structure}}",
  "system_name": "relax"
})

# Step 3: Single point for DOS
catgo_workflow_engine(action="add_task", params={
  "workflow_id": "wf_xxx",
  "task_type": "single_point",
  "software": "vasp",
  "structure": "{{t_002.output.structure}}",
  "ISMEAR": -5,
  "NEDOS": 3001,
  "LORBIT": 11,
  "LCHARG": true,
  "EDIFF": 1e-6,
  "system_name": "DOS"
})

# Step 4: DOS analysis
catgo_workflow_engine(action="add_task", params={
  "workflow_id": "wf_xxx",
  "task_type": "dos_analysis",
  "data": "{{t_003.output.energy}}",
  "d_band": true,
  "system_name": "DOS_analysis"
})

catgo_workflow_engine(action="submit", params={"workflow_id": "wf_xxx"})

Key DOS Parameters

ParameterValuePurpose
ISMEAR-5Tetrahedron method — accurate DOS integration
NEDOS3001Energy grid points (more = smoother DOS)
LORBIT11Write atom-projected and orbital-projected DOS
EMIN/EMAXautoEnergy range (auto-detected from eigenvalues)
LCHARGTrueWrite CHGCAR for post-processing

ISMEAR=-5 Requirements

  • Requires at least 3 k-points in each periodic direction
  • Do NOT use for Gamma-only calculations (use ISMEAR=0 instead)
  • Do NOT use during geometry optimization (forces are inaccurate)
  • For metals with few k-points, use ISMEAR=1, SIGMA=0.2 and accept slightly noisier DOS

d-Band Center Analysis

The dos_analysis task computes the d-band center for transition metals:

d_band_center = integral(rho_d(E) * E dE) / integral(rho_d(E) dE)

This is valuable for catalysis studies (Norskov d-band model). The analysis automatically identifies transition metal atoms and extracts their d-orbital projected DOS.

Spin-Polarized DOS

For magnetic systems, set ISPIN=2 to get spin-up and spin-down DOS separately:

sp = wf.add_task(single_point, structure=opt.output.structure,
                 ISMEAR=-5, NEDOS=3001, LORBIT=11,
                 ISPIN=2,
                 MAGMOM="4*5.0 8*0.6",  # Initial moments
                 system_name="DOS_spin")

Partial DOS (PDOS) for Specific Atoms

LORBIT=11 writes per-atom projections. The dos_analysis task can extract DOS for specific atoms or orbitals. Common use cases:

  • Surface vs bulk atoms: compare DOS of surface layer vs interior
  • Adsorbate bonding: compare adsorbate p-states with metal d-states
  • Alloying effects: compare d-band of alloy components

Skip Optimization (Pre-Optimized Structure)

If the structure is already optimized, skip step 1:

wf = Workflow("DOS only")
struct = wf.add_task("structure_input", structure=optimized_json)
sp = wf.add_task(single_point, structure=struct.output.structure,
                 ISMEAR=-5, NEDOS=3001, LORBIT=11,
                 system_name="DOS")
wf.submit()

Troubleshooting

ProblemFix
Noisy/spiky DOSIncrease NEDOS (try 5001), use ISMEAR=-5
ISMEAR=-5 errorNeed >= 3 k-points per direction. Increase k-mesh
No d-band centerdos_analysis only computes d-band for transition metals
DOS looks wrongCheck that SCF is converged (EDIFF=1e-6), check ISPIN for magnetic systems
Fermi level misplacedVASP sets E_F automatically; verify with band structure

Output

The single_point task produces raw DOSCAR data. The dos_analysis task produces:

  • output.dos_data — total and projected DOS as plottable arrays
  • d-band center, d-band width, and band gap (if applicable)

Signals

GitHub stars
196
Forks
23
Last commit
Sep 2026

Others that do the same job

Advanced
Catalog kind
skill
Gateway key
vasp-dos
Source
github.com/hello-qm/catgo-lrg