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RAW CARBONMaterials, made tangible.
Inside the process

A brief pulse. A material transformation.

Flash Joule synthesis uses electrical heating to transform a carbon precursor. The useful outcome is the material you can characterize and evaluate.

01

Prepare the precursor

Start with the feedstock and the requirements of the intended material.

02

Apply the pulse

Electrical energy heats the precursor. The pulse and cooling conditions shape the process.

03

Characterize the output

Evaluate the resulting material against the application and agreed acceptance criteria.

From process to specification

The result needs evidence.

A process description does not establish the properties of a particular batch. For a materials request, identify the measurements that matter to your formulation or component.

Use the process illustration below to explore the equipment concept. Its labels and values describe a model; they are not a live production readout.

Explore characterization →
Explore the reactor concept

Illustrative process model. Not operating instructions or measured batch telemetry.

FJH-REACTOR-CAD · Sectional Schematic

Flash Joule Transformation Reactor

> 3,000 K ImpulseNon-Bernal Lattice
01. CAPACITIVE PULSE BANKStored Energy: High JoulesCurrent Density: > 10⁴ A/cm²Discharge Window: < 10 ms// Specific Action Integral h(t)∫ j²(τ) dτ > Threshold02. QUARTZ REACTION SLEEVEImpulse Peak: > 3,000 KInert Atmosphere: Argon ShroudImpurity Flash Volatilization// Radiative Cooling RateQuench Rate: > 10⁴ K/s03. NON-BERNAL LATTICEd₀₀₂ Spacing: 0.345 nmRaman 2D/G: > 1.8Lattice Register: Rotational Decoupled// Exfoliation StateZero Acid · Pure Flakes
Zone 02: High-Purity Quartz Sleeve & Argon Shroud

The solid-state reaction column is enclosed in a heavy-wall quartz sleeve purged with positive-pressure argon. Temperatures spike past 3,000 K, outgassing non-carbon heteroatoms (O, N, H) as volatile vapors while carbon recrystallizes directly into sp² bonded sheets.

Your next material

Let’s work out the right fit.

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