What is SWCNT?

Single-Walled Carbon Nanotubes (SWCNT)

Aurexene Materials manufactures SWCNT powder and supplied dispersions or conductive slurry routes for low-loading conductive networks, ESD, premium EMI layers, advanced electrodes, and thin coatings.

Technical owner: Aurexene Materials Engineering Team · Last updated: 2026-07-26

Single-Walled Carbon Nanotubessingle wall CNTSWNT

Quick Answer

SWCNT is a carbon nanotube formed from one graphene sheet rolled into a single cylindrical wall. Aurexene Materials manufactures SWCNT powder and supplies grade-specific dispersion and conductive slurry routes for customer validation.

What It Is Not

  • SWCNT is not MWCNT, carbon fiber, or carbon black. A two-wall nanotube is technically double-walled; any 1–2-wall description below is a supplier morphology statement for a named grade and may reflect a minor double-wall fraction.

When Not to Use It

  • Avoid SWCNT when MWCNT or conductive carbon black can meet the target with a wider process window or lower cost.
  • Avoid SWCNT when dispersion, viscosity, filtration, dust control, or production resistance uniformity cannot be validated.
  • Do not select SWCNT for EMI or energy storage from a material-page claim alone; finished-layer or cell-level testing is required.

Intrinsic Screening Summary

Identity screen
Carbon; A SWCNT has one rolled graphene wall. Named Aurexene Materials powder grades use a supplier-reported 1–2-wall morphology that may include a minor double-wall fraction; confirm the selected grade's wall-count distribution and analytical method before qualification.
Intrinsic feature
Forms percolating conductive networks at low loading when the tubes are dispersed and preserved through the full process
Material-level integration
CVD growth conditions influence diameter and chirality distribution; purification changes catalyst residue, defects, bundle state, and dispersibility.

Application Fit

Selection & Validation Framework

Decision QuestionMaterial-Level Answer
Dispersion and network retentionFix carrier, dispersant, solids, addition order, wetting, deagglomeration, shear history, filtration, coating or compounding route, and drying before comparing resistance. Reject a route that meets conductivity only outside the usable viscosity, appearance, filtration, mechanical, or aging window.

Material Identity & Specification Status

Approved values for Density are not published; confirm them during quotation or sample review.

Available Grades

GradeFormParticle sizePurityTypical useAvailability
YXL1.0-PSWCNT powder; supplier-reported 1–2-wall morphology may include a minor double-wall fractionSupplier grade value—1–2 nm center diameter; 2–8 um lengthSupplier grade value—>98% carbon; residue <1%Low-loading conductive-network and ESD screeningConfirm current YXL1.0-P TDS and COA
YXL1.5-PSWCNT powder; supplier-reported 1–2-wall morphology may include a minor double-wall fractionSupplier grade value—1.5–2.5 nm center diameter; 2–10 um lengthSupplier grade value—>98% carbon; residue <1%; supplier graph reports G/D >=100Low-loading conductive-network, ESD, and thin-layer screeningConfirm current YXL1.5-P TDS and COA
YXL2.0-PSWCNT powder; supplier-reported 1–2-wall morphology may include a minor double-wall fractionSupplier grade value—2–3 nm center diameter; 3–11 um lengthSupplier grade value—>98% carbon; residue <1%Conductive slurry, coating, and composite developmentConfirm current YXL2.0-P TDS and COA
YXL04M / YXL02BSurfactant-free aqueous SWCNT dispersion in water; 0.4 wt% / 0.2 wt%Supplier grade value—bundle diameter 3–30 nm (peak 10 nm); length 0.29–6.2 um (peak 1.39 um)Supplier grade value—>95% carbon purityWater-based SWCNT dispersion screeningConfirm carrier, 60 / 90 mPa·s viscosity basis, storage, TDS, and COA
YXL-DL / YXL-DHYXL1.5-P aqueous dispersion with anionic surfactant; 0.05 wt% / 0.2 wt%Supplier grade value—1.5–2.5 nm center diameterSupplier grade value—>95% carbon purityThin conductive film and ESD screeningConfirm 1400 mPa·s viscosity basis, storage, TDS, and COA
YXL-PB / YXL-PBNYXL2.0-P dispersion; 0.4 wt% in water/cellulose or NMP/acrylate polymerSupplier grade value—2–3 nm center diameterRequest current grade-specific TDS and COACustomized conductive slurry and coating developmentConfirm carrier compatibility, storage, TDS, and COA
PropertyValueMethod
CompositionCarbon
CAS / identity308068-56-6
MorphologyA SWCNT has one rolled graphene wall. Named Aurexene Materials powder grades use a supplier-reported 1–2-wall morphology that may include a minor double-wall fraction; confirm the selected grade's wall-count distribution and analytical method before qualification.
PackagingPowders use sealed antistatic containers; dispersions use sealed compatible containers. Confirm package size by grade and supplied form.
StorageStore and handle only under the conditions in the current grade-specific TDS and SDS. Prevent powder dust generation and ignition sources; confirm dispersion temperature, shelf life, and agitation requirements by grade.
Reference-grade powder bulk density0.10 g/cm3 for Sigma-Aldrich catalog grade 773735; not a Aurexene Materials grade specificationExternal catalog benchmark reported under ASTM D7481
True density versus bulk densityTrue/material density and loose or tapped powder bulk density are different quantities and must not be substitutedConfirm definition, sample conditioning, and method for the selected grade

Why It Works

Named-grade figures are supplier technical-data values for screening, not universal SWCNT properties or finished-system guarantees. Confirm the selected grade's composition, test methods, and acceptance limits before purchasing or scale-up.

StructureFunctionMechanism
One graphene sheet rolled into a high-aspect-ratio cylindrical wallForms percolating conductive networks at low loading when the tubes are dispersed and preserved through the full processLong nanotubes bridge gaps between conductive domains; bulk performance still depends on bundle state, tube length, chirality and metallic/semiconducting distribution, junction resistance, matrix interaction, thickness, and processing history.

Compare Material Routes

Material / RouteDecision Boundary
MWCNTSelect SWCNT when low additive mass, fine conductive networks, or thin layers justify tighter dispersion and qualification control. Select MWCNT when cost, supply familiarity, robustness, or a wider processing window outweighs SWCNT network efficiency.
Conductive Carbon BlackSWCNT can reach a conductive network with less additive mass in a compatible, well-dispersed system. Conductive carbon black is often preferable when cost and forgiving bulk processing matter more than low loading or thin-layer performance.
FWCNTCompare SWCNT and FWCNT directly for ESD and EMI network efficiency. Selection depends on actual grade morphology, dispersion, rheology, thickness, cost, and final-system test data.

Technical Guides

Technical GuideSummary
DGU Separation for Semiconducting and Metallic SWCNTDensity-gradient ultracentrifugation separates Single-Walled Carbon Nanotubes (SWCNT) fractions by surfactant-assisted density contrast, allowing semiconducting, metallic, and purified SWCNT grade routes to be screened with electronic-type, spectra, purity, dispersion, and device evidence.

FAQ

When should a buyer select SWCNT rather than MWCNT?

Select SWCNT when low additive mass, a fine percolating network, or a thin conductive layer creates enough value to justify stricter dispersion, rheology, handling, and qualification controls. Select MWCNT when cost, processing latitude, and production robustness dominate.

Why do CVD growth, purification, and chirality matter?

CVD growth influences tube diameter and chirality distribution, which affect metallic or semiconducting behavior. Purification changes catalyst residue, defects, bundle state, tube damage, and dispersibility, so the current grade evidence matters more than the generic SWCNT label.

Does Aurexene Materials supply SWCNT powder, dispersion, or conductive slurry forms?

Aurexene Materials manufactures SWCNT powder and supplies selected aqueous dispersions and conductive slurry forms. Confirm the grade, concentration, carrier, surfactant, viscosity method, storage conditions, and document status before selection.

When should SWCNT be avoided?

Avoid SWCNT when a lower-cost carbon route meets the target, when black color or nanotube handling is unacceptable, or when dispersion, viscosity, filtration, resistance uniformity, finished-layer EMI, or cell-level performance cannot be validated.

Documents & Inquiry

Document access follows the current approval state. Unapproved or unavailable files route to a document request instead of a public download.

SWCNT Manufacturing, Grade & Qualification Support

Aurexene Materials manufactures SWCNT powder and supplies selected aqueous dispersions and conductive slurry forms. Support is scoped to requirements review, grade and supplied-form selection, document or sample review, and quotation; customer formulation, process, finished-layer, and cell validation remain required.

This inquiry and qualification path does not guarantee performance or availability:

  1. Requirements review
  2. Grade and supplied-form selection
  3. Document and sample review
  4. Customer formulation and process validation
  5. Scale-up quotation

Supplier-grade diameter, length, wall-count morphology, carbon purity, residue, viscosity, concentration, and storage values are screening data for the named grade only. Do not transfer them to another SWCNT grade or finished formulation without document review and application testing.

Review Lab Capabilities for sample evaluation and qualification support, or Production Capabilities for scale-up, quality, documentation, and supply support.

Request SWCNT Sample / Qualification Review