| name | moire-superlattice |
| description | Use when the user asks to create a moire pattern, twisted bilayer structure, magic angle graphene, or any twisted 2D heterostructure.
|
Moire Superlattice
Overview
A moire superlattice forms when two identical 2D layers are stacked with a
relative twist angle. The resulting interference pattern creates a periodic
supercell with properties that depend strongly on the twist angle.
Common applications:
- Twisted bilayer graphene (TBG): magic-angle superconductivity (~1.1 deg)
- Twisted TMDs: MoS2/MoS2, WSe2/WSe2 moire excitons
- Flat-band engineering: correlated electron physics
- Strain-engineered devices: tunable band gaps
MCP Tools
catgo_moire_search -- Find commensurate angles
{"tool": "catgo_moire_search", "arguments": {
"structure": "<current viewer structure>",
"max_angle": 30,
"tolerance": 0.01
}}
Searches for twist angles that produce commensurate superlattices (exact
periodic boundary conditions). Returns a list of angles with supercell
sizes, atom counts, and lattice mismatch.
| Parameter | Description | Default |
|---|
structure | 2D monolayer structure (auto-fetched from viewer) | (required) |
max_angle | Maximum twist angle to search (degrees) | 30 |
tolerance | Commensurability tolerance | 0.01 |
catgo_moire_build -- Build the twisted bilayer
{"tool": "catgo_moire_build", "arguments": {
"structure": "<current viewer structure>",
"angle": 21.79,
"interlayer_distance": 3.35
}}
| Parameter | Description | Default |
|---|
structure | 2D monolayer structure | (required) |
angle | Twist angle in degrees (from search results) | (required) |
interlayer_distance | Distance between layers in Angstroms | 3.35 |
Router: /moire/search (POST), /moire/build (POST)
Complete Workflow: Twisted Bilayer Graphene
Step 1: Fetch graphene monolayer
{"tool": "catgo_fetch", "arguments": {
"action": "crystal", "formula": "C", "source": "mc3d"
}}
Or load a graphene structure from file.
Step 2: Search for commensurate angles
{"tool": "catgo_moire_search", "arguments": {
"max_angle": 10,
"tolerance": 0.01
}}
The result lists angles sorted by supercell size. Small angles produce
very large supercells (thousands of atoms).
Step 3: Build the moire structure
Pick an angle from the search results:
{"tool": "catgo_moire_build", "arguments": {
"angle": 5.09,
"interlayer_distance": 3.35
}}
Step 4: Verify
{"tool": "catgo_view", "arguments": {"action": "get_state"}}
Check: two layers visible, correct interlayer spacing, moire pattern
in the xy plane.
Step 5: Relax (optional -- requires ML potential for large cells)
Magic-angle TBG (~1.1 deg) has ~11,000+ atoms. Use an MLP for relaxation:
{"tool": "catgo_workflow_engine", "arguments": {
"action": "create", "params": {"name": "TBG moire relaxation"}
}}
{"tool": "catgo_workflow_engine", "arguments": {
"action": "add_task", "params": {
"workflow_id": "<wf_id>",
"task_type": "geo_opt",
"params": {"software": "mlp", "mlp_model": "mace",
"system_name": "TBG-5.09deg"}
}
}}
Angle Selection Guide
| Angle (deg) | Approx. Atoms (graphene) | Notes |
|---|
| 21.79 | ~28 | Smallest commensurate, good for testing |
| 13.17 | ~76 | Small, DFT-feasible |
| 9.43 | ~148 | Moderate |
| 5.09 | ~508 | Large, MLP recommended |
| 3.89 | ~868 | Very large |
| 1.08 | ~11,164 | Magic angle, MLP or tight-binding only |
Common Pitfalls
- Always start from a monolayer (single 2D layer). If you have a bulk
structure, cut it down to one layer first.
- Small twist angles produce very large supercells. Check atom count from
catgo_moire_search before building.
- The interlayer distance for graphene is ~3.35 A. For TMDs it is typically
~6.1-6.5 A (layer center to center). Use appropriate values.
- Only commensurate angles from the search results give exact periodic
boundary conditions. Arbitrary angles require approximation and may
have significant strain.
- DFT calculations on moire structures larger than ~200 atoms typically
require ML potentials or tight-binding methods. Standard DFT is
impractical for magic-angle TBG.
- Van der Waals corrections (DFT-D3, rVV10) are essential for accurate
interlayer interactions.