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750492

Sigma-Aldrich

Carbon nanotube, single-walled

<3.5% Metal Catalyst, avg. no. of layers, 1

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Synonym(s):
PureTubes, SWCNT, SWNT, Single wall carbon nanotube
CAS Number:

Assay

30% (Metallic)
70% (Semiconducting)

Quality Level

form

solid

feature

avg. no. of layers 1

manufacturer/tradename

NanoIntegris, Inc.

L

0.3-5 μm

impurities

<3.5% Metal Catalyst

diameter

1.2-1.7 nm

mp

3652-3697 °C (lit.)

density

1.7-1.9 g/cm3 at 25 °C (lit.)

SMILES string

[C]

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Carbon nanotube, single-walled &lt;3.5% Metal Catalyst, avg. no. of layers, 1

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Carbon nanotube, single-walled

Carbon nanotube, single-walled &#8805;90% carbon basis (&#8805;80% as carbon nanotubes), 1-2&#160;nm diameter, avg. no. of layers, 1

724777

Carbon nanotube, single-walled

assay

30% (Metallic), 70% (Semiconducting)

assay

2% (Semiconducting), 98% (Metallic)

assay

≥98% carbon basis, <1% (ash)

assay

≥90% carbon basis (≥80% as carbon nanotubes)

Quality Level

100

Quality Level

100

Quality Level

100

Quality Level

100

feature

avg. no. of layers 1

feature

avg. no. of layers 1

feature

avg. no. of layers 1

feature

avg. no. of layers 1

manufacturer/tradename

NanoIntegris, Inc.

manufacturer/tradename

NanoIntegris, Inc.

manufacturer/tradename

-

manufacturer/tradename

Signis® CG200

L

0.3-5 μm

L

0.3-5 μm

L

300-500 μm , in forest

L

-

General description

PureTubes are produced by arch discharge or plasma torch. The diameter of the semiconducting single walled nanotubes range in 1.2-1.7 nm, whereas the length varies from 100nm to 4 μm. The catalyst content is < 3.5%.

Application

These carbon nanotubes are produced via the Arc Discharge process and are purified via density gradient centrifugation.

Research applications include:
  • Electronics
  • Sensors
  • Composites
  • Energy Storage
  • Study of Life Science systems

Preparation Note

Electric Arc Discharge Method

Legal Information

Product of NanoIntegris, Inc
PureTubes is a trademark of NanoIntegris, Inc.

Pictograms

Exclamation markHealth hazard

Signal Word

Warning

Hazard Statements

Hazard Classifications

Carc. 2 - Skin Sens. 1 - STOT RE 2

Storage Class Code

11 - Combustible Solids

WGK

WGK 3

Flash Point(F)

Not applicable

Flash Point(C)

Not applicable


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Chad D Vecitis et al.
ACS nano, 4(9), 5471-5479 (2010-09-04)
Single-walled carbon nanotubes (SWNTs) have been previously observed to be strong antimicrobial agents, and SWNT coatings can significantly reduce biofilm formation. However, the SWNT antimicrobial mechanism is not fully understood. Previous studies on SWNT cytotoxicity have concluded that membrane stress
Chuan Wang et al.
ACS nano, 4(12), 7123-7132 (2010-11-11)
Macroelectronic integrated circuits are widely used in applications such as flat panel display and transparent electronics, as well as flexible and stretchable electronics. However, the challenge is to find the channel material that can simultaneously offer low temperature processing, high
Amin Salehi-Khojin et al.
ACS nano, 5(1), 153-158 (2010-12-29)
There has been recent controversy whether the response seen in carbon nanotube (CNT) chemiresistors is associated with a change in the resistance of the individual nanotubes or changes in the resistance of the junctions. In this study, we carry out

Articles

We presents an article concerning the applications of high-purity single-walled nanotubes in electronic and biomedical fields.

Single-Walled Carbon Nanotubes synthesized by the Super-Growth Method & their properties & applications, including dispersing SGCNTs, SGCNT-polymer composites & SGCNT-metal composites are discussed.

Boron nitride nanotubes (BNNT) are close structural analogs of carbon nanotubes (CNT), which are high aspect ratio nanotubular material, where carbon atoms are alternately substituted by nitrogen and boron atoms.

Carbon nanotubes (CNTs) have received much attention since their discovery in 1991 by Sumio lijima1 due to their excellent mechanical, electrical, and optical properties.

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