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Single walled carbon nanotubes (SWCNTs) are unique materials with many outstanding features. In this simple and easy-to-understand guide, we will discuss their structure, how to spread them evenly, and their special features, such as mechanical, electrical, optical, and thermal properties.
SWCNTs have chemically derived from graphene, an allotrope of carbon. It is a one-dimensional material due to its high aspect ratio. The SWCNT is a one atom thick sheet of graphene that looks like a tube. There are various methods to produce; however, the Catalytic chemical vapor deposition (CCVD) method is one of the popular techniques. We use the same to produce this product. It is one of the popular types of nanotubes, and it possesses a 0 to 2 eV band gap.
At the core, the single-walled carbon nanotubes have sp2 hybrid bonds, and the diameter ranges from 0.7 and 10 nm. Ideally, the diameter is less than or equal to 2 nm. Typically, the product has two configurations - zigzag and armchair.
SWCNTs are made of a single layer of carbon atoms arranged in a honeycomb pattern and rolled into a tiny tube shape. They are minimal, with diameters as tiny as 0.4 nanometers and lengths that can be several micrometers.
We offer single-walled carbon nanotubes in powder as well as in dispersion form packed in PET bottle. Since we are the product manufacturer and seller, we also customize the product according to the client's requirements if the order is in bulk. The functionalized groups of the single walled carbon nanotubes are also available on demand. If the researcher wishes to disperse the product in aqueous solvents, it must opt for the functionalized groups.


SWCNTs have special features because of their small size and structure. They are very strong, have excellent electrical conductivity, and have unique optical properties, making them useful for many applications.
| Technical Specifications – Single Walled Carbon Nanotubes | |
|---|---|
| Material | Carbon (Graphene-derived) |
| Diameter | 0.7 nm – 10 nm (ideally ≤ 2 nm) |
| Band Gap | 0 – 2 eV |
| Tensile Strength | 48,000 kN·m·kg⁻¹ |
| Electrical Conductivity | 4 × 10⁹ A/cm² |
| Thermal Conductivity | > 3000 W/m·k |
| Mass Density | Max. 1.6 g/cm³ |
| Maximum Length Achieved | 550 mm (1/2 meter) |
| Bonding Type | sp2 Hybrid |
| Configuration | Zigzag, Armchair |
| Production Method | Catalytic Chemical Vapor Deposition (CCVD) |
| Available Form | Powder / Dispersion (PET bottle) |

| Parameter | SWCNTs (Single Walled) | MWCNTs (Multi Walled) |
|---|---|---|
| Structure | Single graphene sheet rolled into a tube | Multiple concentric graphene tubes |
| Diameter | 0.7 – 2 nm (typically) | 2 – 100 nm |
| Length | Up to several micrometers | Up to several micrometers |
| Electrical Properties | Metallic or semiconducting | Mostly metallic |
| Thermal Conductivity | > 3000 W/m·K (very high) | ~ 3000 W/m·K (high) |
| Mechanical Strength | Very high (stronger & more flexible) | High (less flexible than SWCNTs) |
| Purity | More difficult to purify | Easier to purify |
| Cost | High | Relatively lower |
| Dispersion | Difficult (requires functionalization) | Easier compared to SWCNTs |
| Production Complexity | Complex | Less complex |
| Applications | Electronics, sensors, nano-devices, high-end research | Composites, coatings, EMI shielding, batteries |
| Surface Area | Higher | Lower compared to SWCNTs |
| Aspect Ratio | Extremely high | High |
Dispersing the single walled carbon nanotubes is simple; however, the researcher must take care of the ingredients' proportions.
Dispersion means spreading SWCNT's evenly in a substance, like a liquid or solid. Proper dispersion is important for getting the most out of SWCNT's in various uses. To do this, we can use methods like shaking with sound waves (sonication), adding special helper substances (surfactants or dispersants), or changing the nanotubes' surface (chemical functionalization).
Single-walled carbon nanotubes (SWCNTs) have many great features, but there are challenges that need to be solved. Here is a simple explanation of the main challenges:
Understanding the properties of SWCNTs is essential for making their best use. Here is a simple explanation of some methods used to study and ensure their quality:
Thermogravimetric analysis (TGA) is used to study materials by measuring their weight changes as they are heated. Here is a simple explanation of how TGA is used to study Single Walled Carbon Nanotubes (SWCNTs):
In conclusion, SWCNTs have many excellent properties and a wide range of applications. To make the most of their potential use, we need to focus on the following areas:
By focusing on these areas, we supply Single-Walled Carbon Nanotubes in various scientific and technological applications, making them even more helpful and valuable in the future.
The researchers must enter the lab with all necessary safety gear. That means that the researchers must have on their PPE kits, gloves, masks, face shields, and goggles while entering the research area.
Frequent exposure to Graphite, graphene, or any other allotropes of carbon is lethal to human health. Since the researchers are always around the product, regular checkups at timely intervals are necessary.
Shilpa Enterprises is a leading firm in the chemical industry with ISO 9001:2008 certification for maintaining its up-to-date top-notch quality and services. We have a productive & professional team with over ten years of experience and can understand and deliver the client's requirements. Moreover, quality being one of our essential criteria, we perform regressive testing on the products. Since we are the manufacturers and sellers of the available products at our site, we can provide them at a reasonably low cost. We offer a vivid range of industrial as well as research-grade single walled carbon nanotubes. We also make sure that the clients receive what they ask for in time.