Carbon Nanotubes Doped with 32 wt% Copper (Cu) Nanopowder/Nanoparticles
- SKU:
- NG01SC0604
- Shipping:
- Calculated at Checkout
Description
5 grams: 130€
25 grams: 295 €
100 grams: 540€
500 grams: 1350€
1000 grams: 1950€
Please contact us for quotes on larger quantities !!!
Carbon Nanotubes Doped with 32 wt% Copper (Cu) Nanopowder/Nanoparticles
Carbon Nanotubes doped with 32 wt% Copper nanoparticles combine CNTs’ high electrical conductivity and mechanical resilience with copper’s excellent electrical, thermal, and catalytic properties. The near-spherical Cu nanoparticles (30 nm, 40 m²/g surface area) are uniformly dispersed within CNT networks, resulting in a hybrid composite with enhanced hardness, tensile strength, specific strength, and elastic modulus. This synergy provides multifunctional performance, making CNT–Cu hybrids suitable for advanced energy storage, electronics, biomedical systems, catalysis, and structural reinforcement.
Technical Properties
| 32 wt% Cu Nanopowder/Nanoparticles | |
| Purity | 99.99% |
| Average Particle Size (nm) | 30 |
| Specific Surface Area (m2/g) | 40.0 |
| True Density (g/cm3) | 9 |
| Color | black |
| Shape | near spherical |
| Carbon Nanotubes (Multi Walled Carbon Nanotubes) | |
| Purity | > 97 wt% |
| Color | black |
| Average Outside Diameter (nm) | > 50 |
| Average Inside Diameter (nm) | 5 |
| Length (µm) | 15-25 |
| Tap Density (g/cm3) | 0.15 |
| True Density (g/cm3) | ~2.4 |
| Specific Surface Area (m2/g) | > 65 |
| Ash | < 1.5 wt% |
| Electrical Conductivity (S/cm) | > 98 |
Applications
- Energy & Storage: CNT–Cu hybrids are applied in lithium-ion batteries and supercapacitors where CNTs provide conductive pathways and copper enhances electrode conductivity, cycle stability, and charge transfer efficiency, while also supporting hydrogen storage.
- Electronics & Optoelectronics: These composites are used in transistors, flat panel displays, and solar cells, combining CNT conductivity with copper’s superior electrical and thermal properties to improve charge transport, optical performance, and device reliability, while also supporting photoluminescence and template-based nanofabrication.
- Biomedical & Biosensing: CNT–Cu hybrids are explored in biosensors for sensitive detection and in drug delivery systems where copper’s bioactivity and CNT’s functional surfaces enable controlled release, targeting, and nanoprobes for imaging and diagnostics.
- Composites & Structural Materials: In polymer and ceramic composites, CNT–Cu hybrids improve tensile strength, hardness, and elastic modulus, making them suitable for aerospace, automotive, and construction applications requiring lightweight yet durable materials with added conductivity.
- Catalysis & Environmental: They act as catalyst supports in electrochemical and photocatalytic reactions, leveraging copper’s catalytic activity and CNT’s conductive scaffolds, while also being used in gas-discharge tubes, pollutant remediation, and environmental sensing.