Merck
CN

496588

Sigma-Aldrich

石墨

powder, <150 μm, 99.99% trace metals basis

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经验公式(希尔记法):
C
CAS号:
分子量:
12.01
EC 号:
MDL编号:
PubChem化学物质编号:
NACRES:
NA.23

等级

battery grade

质量水平

检测方案

99.99% trace metals basis

形式

powder

分子量

Mw 12.011 g/mol

组成

C

粒径

<150 μm

mp

3652-3697 °C (lit.)

密度

2.26 g/cm3 (lit.)

应用

battery manufacturing

SMILES字符串

[C]

InChI

1S/C

InChI key

OKTJSMMVPCPJKN-UHFFFAOYSA-N

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储存分类代码

11 - Combustible Solids

WGK

nwg

闪点(°F)

Not applicable

闪点(°C)

Not applicable

个人防护装备

dust mask type N95 (US), Eyeshields, Gloves


分析证书(COA)

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Craig E Banks et al.
The Analyst, 131(1), 15-21 (2006-01-24)
Different types of carbon based electrodes have emerged over the last few years, significantly changing the scope and sensitivity of electro-analytical methods for the measurement of diverse targets from metal ions through gases to biological markers. This Highlight article shows
Anja Schinwald et al.
Nanotoxicology, 8(8), 824-832 (2013-08-09)
Two-dimensional graphitic carbon, graphene, is a new form of nanomaterial with great potential in a wide variety of applications. It is therefore crucial to investigate the behaviour of graphene in biological systems to assess potential adverse effects that might follow
Sang Tae Park et al.
Proceedings of the National Academy of Sciences of the United States of America, 110(23), 9277-9282 (2013-05-22)
Enhanced image contrast has been seen at graphene-layered steps a few nanometers in height by means of photon-induced near-field electron microscopy (PINEM) using synchronous femtosecond pulses of light and electrons. The observed steps are formed by the edges of graphene
Min Seok Jang et al.
Proceedings of the National Academy of Sciences of the United States of America, 110(22), 8786-8789 (2013-05-15)
Graphene is a room temperature ballistic electron conductor and also a very good thermal conductor. Thus, it has been regarded as an ideal material for postsilicon electronic applications. A major complication is that the relativistic massless electrons in pristine graphene
Sukosin Thongrattanasiri et al.
Physical review letters, 110(18), 187401-187401 (2013-05-21)
The ability of plasmons to enhance the electromagnetic field intensity in the gap between metallic nanoparticles derives from their strong optical confinement relative to the light wavelength. The spatial extension of plasmons in doped graphene has recently been shown to

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