Intercalation
SkillDev toolsIntercalation inserts guest atoms or ions into the interlayer spaces of a layered host material. This is fundamental to battery electrode design, where ions shuttle between electrodes during charge/discharge cycles.
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Then ask your AI: use the Intercalation skill
About this capability
Use when the user asks to intercalate atoms or ions between layers, insert lithium into a cathode, or place species in interlayer gaps of a layered material.
What this skill tells your AI
The instructions your AI receives, as published by hello-qm/catgo-lrg in server/catgo/workflow/skills/structure/intercalation/SKILL.md and read by ahel’s review.
Overview
Intercalation inserts guest atoms or ions into the interlayer spaces of a layered host material. This is fundamental to battery electrode design, where ions shuttle between electrodes during charge/discharge cycles.
Common applications:
- Li-ion batteries: Li intercalation in LiCoO2, LiFePO4, graphite
- Na-ion batteries: Na intercalation in layered oxides, MXenes
- Supercapacitors: ion insertion in MXenes, layered hydroxides
- Catalysis: intercalated species modifying interlayer chemistry
- 2D materials: ion intercalation in MoS2, graphite for exfoliation
MCP Tool: catgo_intercalation
{"tool": "catgo_intercalation", "arguments": {
"structure": "<current structure dict>",
"species": "Li",
"position": "auto",
"n_intercalants": 1
}}
| Parameter | Description | Default |
|---|---|---|
structure | Layered host structure dict | (required) |
species | Intercalant element symbol | (required) |
position | Placement strategy | "auto" |
n_intercalants | Number of intercalant atoms to insert | 1 |
Position Modes
| Mode | Description |
|---|---|
auto | Finds the largest gap in z-fractional coordinates and inserts at the midpoint. Best default for layered materials. |
tetrahedral | Places at approximate tetrahedral interstitial sites (frac coords ~0.25). |
octahedral | Places at approximate octahedral interstitial sites (frac coords ~0.5). |
custom | For manual positioning (specify coordinates separately). |
Router: /build/intercalation (POST)
Complete Workflow: Li Intercalation in LiCoO2
Step 1: Fetch the host structure
{"tool": "catgo_fetch", "arguments": {
"action": "crystal", "formula": "CoO2", "source": "mp"
}}
Or fetch the fully lithiated phase:
{"tool": "catgo_fetch", "arguments": {
"action": "crystal", "formula": "LiCoO2", "source": "mp"
}}
Step 2: Create a supercell for dilute intercalation
{"tool": "catgo_structure", "arguments": {
"action": "supercell",
"scaling": [2, 2, 1]
}}
Step 3: Intercalate Li
{"tool": "catgo_intercalation", "arguments": {
"species": "Li",
"position": "auto",
"n_intercalants": 1
}}
For higher concentrations, increase n_intercalants. Multiple
intercalants are distributed across the interlayer plane.
Step 4: Verify
{"tool": "catgo_view", "arguments": {"action": "get_state"}}
Check: Li atom is between layers, not overlapping with host atoms, reasonable interlayer distance preserved.
Step 5: Relax and compute intercalation voltage
{"tool": "catgo_workflow_engine", "arguments": {
"action": "create", "params": {"name": "Li-CoO2 intercalation"}
}}
{"tool": "catgo_workflow_engine", "arguments": {
"action": "add_task", "params": {
"workflow_id": "<wf_id>",
"task_type": "geo_opt",
"params": {"software": "vasp", "ENCUT": 520,
"LDAU": true, "LDAUU": {"Co": 3.32},
"system_name": "LixCoO2 relax"}
}
}}
Intercalation Voltage Calculation
The average intercalation voltage is:
V = -(E[Li_x2 Host] - E[Li_x1 Host] - (x2 - x1) * E[Li_metal]) / ((x2 - x1) * F)
where F is the Faraday constant. In practice:
- Relax the empty host (x = 0)
- Relax the fully intercalated structure (x = 1)
- Optionally relax intermediate compositions
- Compute V from the energy difference
Common Intercalant Species
| Species | Application | Typical Hosts |
|---|---|---|
| Li | Li-ion batteries | CoO2, FePO4, MnO2, graphite, TiS2 |
| Na | Na-ion batteries | MnO2, V2O5, Prussian blue analogues |
| K | K-ion batteries | Graphite, MoS2 |
| Mg | Mg batteries | V2O5, MoS2, TiS2 |
| H | Proton intercalation | MnO2, WO3 (electrochromics) |
DFT Considerations
- DFT+U: Required for transition metal oxides (Co, Mn, Fe, Ni). Common U values: Co (3.32 eV), Mn (3.9 eV), Fe (5.3 eV), Ni (6.2 eV).
- Van der Waals: DFT-D3 corrections important for layered materials where interlayer bonding is weak.
- Spin polarization: Always use ISPIN=2 for transition metal oxides.
- K-points: Sufficient sampling in the layer plane; fewer points needed perpendicular to layers.
Common Pitfalls
- The
autoposition mode finds the largest z-gap. For materials with multiple interlayer gaps of similar size, verify the intercalant ended up in the correct gap. - Always relax after intercalation. The host lattice expands to accommodate the guest species.
- For concentrated intercalation (multiple atoms), ensure intercalants
are not placed too close together. Check with
catgo_viewafter insertion. - The host structure should be a bulk layered material, not a slab. Slabs have vacuum that will confuse the auto-positioning algorithm.
- Transition metal oxidation states change upon intercalation (e.g., Co4+ to Co3+ when Li is inserted). This affects magnetic moments and DFT+U parameters.
- For accurate voltage predictions, use the same ENCUT, k-points, and DFT+U parameters for all compositions in the voltage calculation.
Signals
- GitHub stars
- 196
- Forks
- 23
- Last commit
- Sep 2026
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intercalation- Source
- github.com/hello-qm/catgo-lrg