Materials intelligence platform

Design matter.
Learn from reality.

LATTICE connects scientific evidence, generative and predictive models, physics-based simulation, engineering constraints, and experimental feedback to accelerate materials development for terrestrial and space infrastructure.

WORKSPACE INTEGRATEDEVIDENCE-AWAREHUMAN-GOVERNED
REQUIREMENTLow-RH H₂O capture≤70°C regeneration · cycling · dust
DISCOVEREvidence-grounded spaceLiterature · datasets · known structures
DESIGNFormulations + architecturesMulti-objective · process constrained
VERIFYEscalate evidencePredict → simulate → experiment
REQUIREMENTDISCOVERDESIGNCRITIQUESIMULATEEXPERIMENTLEARN

Point of view

Materials discovery should behave like an evidence-driven learning system.

Search broadly. Score cheaply. Escalate selectively. Verify against physics. Learn from every experiment.

LATTICE coordinates models, solvers, databases and experiments inside one evidence-driven learning loop.

3CORE OPERATING PILLARS
9MATERIAL LIBRARIES
6PRIMARY EVIDENCE STATES
1CLOSED LEARNING LOOP

Core platform

Discover. Design. Verify.

The permanent operating core. LATTICE starts from an engineering objective, traverses evidence and design space, then selects candidates for progressively stronger simulation and experiment based on evidence and decision value.

01 / DISCOVER

Build the evidence-grounded design space.

Parse mission requirements, search literature and patents, retrieve known materials, extract evidence, ingest structures and contract the candidate universe before higher-fidelity computation.

LITERATURE + PATENTSDATABASE RETRIEVALSCREENINGEVIDENCE GRAPH
SEARCH · RETRIEVE · SCREEN · TRACE
02 / DESIGN

Generate against competing objectives.

Explore structures, formulations, interfaces and architectures with manufacturability, cost, environment and mission constraints inside the design loop.

INVERSE DESIGNMULTI-OBJECTIVEACTIVE LEARNINGCO-DESIGN
GENERATE · OPTIMIZE · TRADE · CONSTRAIN
03 / VERIFY

Escalate evidence through progressively stronger validation.

Use independent critics, deterministic checks, fit-for-domain simulation, uncertainty analysis and experiment planning—then reconcile measurements and failures into the next cycle.

CRITICSSIMULATIONEXPERIMENTRECONCILIATION
CRITIQUE · SIMULATE · TEST · LEARN

One visual grammar across the platform: DISCOVER brings evidence into an inspectable design space; DESIGN turns objectives into material architectures; VERIFY advances candidates through progressively stronger evidence.

Closed-loop architecture

Generate fast.
Verify harder.

Computational and experimental effort rises with evidence depth and decision value.

  • 01
    Condition the problemFunction · environment · constraints · evidence threshold
  • 02
    Search and designKnown evidence + generated candidates + formulations
  • 03
    Critique and simulateSelect fit-for-domain tools for each material family and mission context
  • 04
    Validate for information gainChoose the next test by decision impact, uncertainty, cost and safety
SELECTIVE ESCALATIONevidence strength →
REQUIREMENTMission objective envelopehuman-defined
DISCOVEREvidence + known candidatesbroad screening
DESIGNGenerated structures / formulationscreative
CRITIQUEValidity + feasibility checksselective
SIMULATEHigh-fidelity physics where justifiedhigh fidelity
EXPERIMENTPhysical validation + uncertainty reductionempirical
LEARNUpdate evidence graph + next cycleclosed loop

LATTICE architecture

One core. Expandable material libraries. Real application contexts.

LATTICE COREDISCOVER · DESIGN · VERIFY
1D / NanomaterialsCNT · BNNT · oxide NT · HNT · WS₂/MoS₂
Water / SeparationMOF · COF · zeolite · membranes · sorbents
ThermalPCM · TIM · coatings · extreme environment
Energy / Electrochemistrycatalysts · electrodes · membranes · electrolytes
Smart / Structuralcomposites · SHM · conductive architectures
Surface / Tribologydust · wear · ESD · lubrication · protection
Radiation / ShieldingBNNT · hydrogen-rich · multifunctional systems
Quantum / Photonicemitters · defects · IR/THz · photonics
Bio / Biohybridbiopolymers · biosorbents · biocatalysts · living systems
EURUS APPLICATION LAYER — WATERIG · WaterGrid · OASIS · FIRN/TARN · FIRN-TERRA · EMBER · WAVE · FLARE/FLARE-XL · LOOM · LatticeForm · LunarForma · LUI · CAIRN/MoonCloud · Quantum Technologies

Materials libraries

Broad by architecture. Specific by mission.

Libraries are reusable domain packs of data, descriptors, constraints, evaluators, simulation hooks and validation templates.

Featured design space

1D / nanotube architectures

narrowwide
randomaligned
INTERACTIVE REPRESENTATIVE STRUCTURESingle-wall carbon nanotube
drag · zoom · auto-rotate
Carbon lattice
Boron
Nitrogen
Titanium
Oxygen
Bond network

Qualitative trade-space

TransportDirectional transport favored by stronger alignment.
Interface / chemistryArray/contact quality may dominate device-level performance.
ManufacturingGrowth, transfer and scale remain explicit constraints.
EnvironmentVacuum compatibility and thermal-cycle stability become explicit gates.
Next evidenceSelect the validation step with the strongest information value for the decision.
Evidence stateDISPLAY-GRADE 3D VISUALIZATION · QUALITATIVE DESIGN SPACE
The viewer is a representative 3D scientific visualization designed for exploration and communication. Descriptor-linked reasoning, evidence class and operating conditions remain visible while the LATTICE app continues to evolve separately.

Applications

A shared intelligence layer. Specialized by mission.

Filter by mission need rather than project name. Each context maps back to concrete materials questions and evidence requirements.

SELECT AN APPLICATION

Mission-conditioned material reasoning

Choose a project card to see the relevant material libraries, target properties, and the evidence gate LATTICE should apply.

LIBRARIESTARGETSNEXT EVIDENCE

Mission walkthroughs

From engineering requirement to the next defensible test.

Two research missions show how the same LATTICE loop adapts to different material families, mission objectives and validation pathways.

CAU-10-H · SOURCEMOF-303 · SOURCEMOF-801 · SOURCEZeolite 13X · BENCHMARKGEN-014 · GEN

Research workspace

Move from platform context into an active materials mission.

The embedded workspace carries mission requirements, candidate records, evidence lineage, validation logic and structured research actions in one continuous environment.

Open full workspace ↗
MISSION OBJECTSrequirements + project context
CANDIDATE RECORDSproperties + evidence state
VALIDATION QUEUEnext test by information gain
RUNS + EVIDENCEtraceable methods and versions
ACTIVE RESEARCH MISSIONSwitch the mission context across the embedded workspace.
LATTICE RESEARCH WORKSPACEOpening OASIS mission…
Move from the overview into a focused research workspace while keeping the same mission context.Launch full workspace ↗

Evidence discipline

Evidence behind every output.

Every consequential value must preserve its evidence state, provenance, method or model, conditions, uncertainty and version. Human authority remains explicit for qualification and safety-critical decisions.

01

Source lineage

Dataset, publication, patent, experimental record, model and version stay attached to the candidate.

02

Uncertainty stays visible

Confidence ranges, evidence depth, research questions and operating conditions remain visible in the decision record.

03

Reproducible runs

Inputs, model/tool versions, solver settings, data versions, outputs and validation state are traceable.

04

Learning from every result

Every completed test and research outcome enriches the next search, design and validation cycle.

05

Human authority

Material selection, qualification, hazardous tests and engineering baselines remain reviewable human decisions.

06

Generated concepts stay classified

Generated candidates carry a GEN evidence state until stronger evidence is attached through prediction, simulation or measurement.

Evidence records

Make provenance inspectable at the value level.

CLICK A RECORD →

Research & evidence

Trace the science behind the decision.

Research pathways connect source literature, engineering context, candidate records and validation logic to the materials decisions they support.

WATER / SEPARATION

Low-humidity water capture

MOF, zeolite and allied sorbent families connect adsorption behavior, regeneration, cycling and cartridge-level engineering.

Explore research pathway →
THERMAL / EXTREME ENVIRONMENT

Thermal materials & storage

PCM systems, thermal interfaces, conductive networks and containment architectures connect material choice to system heat flow and cycling.

Explore research pathway →
1D / NANOMATERIALS

Descriptor-rich architectures

Material class, geometry, alignment, chemistry, fill and environment form a reusable design space for transport, thermal, sensing, tribology and photonics.

Explore research pathway →
Evidence is part of the product experience.Source, method, conditions, uncertainty and validation state remain connected to the records that inform each mission.Browse research & evidence →

eurus Intelligence Foundry

A specialist engine inside a broader technical intelligence architecture.

LATTICE is the materials intelligence specialist inside the eurus Intelligence Foundry—a human-governed system for assembling models, deterministic tools, simulation, experiments and evidence workflows around technical objectives.

eurus Intelligence FoundryCross-domain technical intelligence and orchestration.
LATTICEMaterials-specific discover · design · verify engine.
Messages are routed to design@lattice.eurus.space.