| Model Number: | Suojihua | CAS: | 308068-56-6 |
|---|---|---|---|
| Color: | Black | Brand: | Turing |
| Fineness: | 10-30μm | Place Of Origin: | Shenzhen |
| Article Number: | Carboxylated Multi-walled Carbon Nanotubes | Specific Surface Area: | Greater Than 500m²/g |
| Product Name: | Carboxylated Multi-walled Carbon Nanotubes | Form: | Black Powder |
| Purpose: | Used In Rubber, Plastics, Energy, Composite Materials, Electrical Conductivity And Thermal Conductivity | Material: | Carboxylated Multi-walled Carbon Nanotubes |
| Whether It Is Imported: | No | Carbon Tube Diameter: | No |
| Resistivity: | 1800.0-2200.0μΩm | Heap Density: | 0.080-0.140g/ml |
Product Details
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The above price does not include tax. A tax point will be added if an invoice is required. A larger quantity can be cheaper.
Partial application
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Multi-walled carbon nanotubes are prepared by modified catalytic chemical vapor deposition (CCVD). They feature high conductivity, high specific surface area, high carbon phase purity, narrow outer diameter distribution, ultra-high aspect ratio, and stable product quality.
Multi-walled carbon nanotubes are mainly used in related industries such as rubber, plastics, lithium batteries, and coatings. In the rubber field, they are mainly applied to rubber products like tires and sealing rings, with advantages of high conductivity, high thermal conductivity, high wear resistance, and high tear resistance. In the plastic field, adding a small amount can greatly improve conductivity, thermal conductivity, and mechanical properties. They are mainly used in plastic products such as PP, PA, PC, PE, PS, ABS, unsaturated resins, and epoxy resins.
Actual parameters and detection indicators
Product Name: Carboxylated Multi-walled Carbon Nanotubes
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Resistivity: 1800.0-2200.0μΩm
Weight loss rate: ›8.00%
Preparation method: CVD
Appearance: Black powder
SEMT diagram
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Carbon nanotubes are another allotrope of carbon discovered after C60. Their radial size is small; the outer diameter of the tube is generally a few nanometers to tens of nanometers, and the inner diameter of the tube is even smaller, with some being only about 1 nm. Their length is generally on the micrometer scale, and the ratio of length to diameter is very large, reaching 103 to 106. Therefore, carbon nanotubes are considered a typical one-dimensional nanomaterial. Since their discovery by humans, carbon nanotubes have been hailed as the material of the future and are one of the frontier fields in international science in recent years. Professor Alex Zettl from the University of California, Berkeley, believes that when comprehensively comparing C60 and carbon nanotubes in terms of application prospects, C60 can be summarized in one page, while carbon nanotubes would require a whole book to
Introduction
Multi-walled Carbon Nanotubes and Single-walled Carbon Nanotubes
In 1985, Professor Kroto, a spectroscopist from the University of Sussex in the UK, and Professors Smalley and Curl from Rice University in the US, during their collaborative research, discovered that carbon can form highly symmetric cage-structured molecules C60 and C70 composed of 60 or 70 carbon atoms, which are called Buckyballs. In 1991, Iijima, a scientist from NEC in Japan, first used a high-resolution tunneling electron microscope to discover a type of carbon nanotube in the cathode scar formed during the preparation of C60. This carbon nanotube has an outer diameter of 5-15 nm and an inner diameter of 2-3 nm, and is composed of only two layers of coaxial graphite-like cylindrical surfaces stacked together. Subsequently, in 1993, Iijima and Bethune's research groups simultaneously reported the synthesis of single-walled carbon nanotubes with a very simple structure. This provided experimental possibilities for the theoretical prediction of the properties of carbon nanotubes, further expanded the range of carbon cluster materials, and also greatly promoted theoretical and experimental research on carbon nanotubes, making this field a global research hotspot today [1].
Characteristics
The unique structure of carbon nanotubes determines that they possess many special physical and chemical properties. The C=C covalent bonds that make up carbon nanotubes are the most stable chemical bonds in nature, thus endowing carbon nanotubes with extremely excellent mechanical properties. Theoretical calculations indicate that carbon nanotubes have extremely high strength and great toughness. Their theoretical values are estimated to have a Young's modulus of up to 5 TPa, a strength approximately 100 times that of steel, while their weight density is only 1/6 of that of steel. Treacy et al. were the first to use TEM to measure the mean square amplitude of multi-walled carbon nanotubes over a temperature range from room temperature to 800 degrees, thereby deriving that the average Young's modulus of multi-walled carbon nanotubes is approximately 1.8 TPa. Salvetat et al. measured the Young's modulus of small-diameter single-walled carbon nanotubes and derived their shear modulus to be 1 TPa. Wong et al. used atomic force microscopy to measure the average bending strength of multi-walled carbon nanotubes as 14.2 ± 10.8 GPa, while the bending strength of carbon fibers is only 1 GPa. In terms of both strength and toughness, carbon nanotubes are far superior to any other fibers and are regarded as the "super fibers" of the future.
Development Prospects
It is predicted that carbon nanotubes may become a new type of high-strength carbon fiber material, which not only possesses the inherent properties of carbon materials, but also has the electrical and thermal conductivity of metal materials, the heat resistance and corrosion resistance of ceramic materials, the编织性 of textile fibers, and the light weight and easy processability of polymer materials. Using carbon nanotubes as a composite material reinforcement is expected to exhibit good strength, elasticity, fatigue resistance, and isotropy, and it is anticipated that carbon nanotube-reinforced composite materials may bring about a leap in the performance of composite materials. Research on making composite materials with nanotubes first began on metal matrices, such as: Fe/carbon nanotubes, Al/carbon nanotubes, Ni/carbon nanotubes, Cu/carbon nanotubes, etc. The research focus of carbon nanotube composite materials has shifted to polymer/carbon nanotube composite materials. For example, in lightweight and high-strength materials, where carbon fibers are used as reinforcing materials, the mechanical properties of carbon nanotubes, along with their small diameter and large aspect ratio, will bring better reinforcing effects.
University customer groups
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