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Graphene nanoplatelets - surface area 750 m2/g, high purity , CAS No.7782-42-5

  • surface area 750 m2/g
Item Number
G434035
Grouped product items
SKUSizeAvailabilityPrice Qty
G434035-50g
50g
Available within 8-12 weeks(?)
Production requires sourcing of materials. We appreciate your patience and understanding.
$334.90

Basic Description

Synonyms05105_FLUKA|05110_FLUKA|05112_FLUKA|05113_FLUKA|05120_FLUKA|05123_FLUKA|101239-80-9|106907-70-4|109766-76-9|114680-00-1|115344-49-5|116788-82-0|12424-49-6|124760-06-1|12751-41-6|12768-98-8|12789-22-9|130960-03-1|131640-45-4|133136-50-2|1333-86-4|1343-03-9
Specifications & Puritysurface area 750 m2/g
Legal InformationxGnP is a registered trademark of XG Sciences, Inc.
Product Description

xGnP ® graphene nanoplatelets are unique nanoparticles consisting of short stacks of graphene sheets having a platelet shape. The unique size and platelet morphology of xGnP ® graphene nanoplatelets makes these particles especially effective at providing barrier properties, while their pure graphitic composition makes them excellent electrical and thermal conductors. xGnP ® graphene nanoplatelets can improve mechanical properties such as stiffness, strength, and surface hardness of the matrix material. xGnP ® graphene nanoplatelets are compatible with almost all polymers, and can be an active ingredient in inks or coatings as well as an excellent additive to plastics of all types. The unique manufacturing processes are non-oxidizing, so material has a pristine graphitic surface of sp 2 carbon molecules that makes it especially suitable for applications requiring high electrical or thermal conductivity. Grade C particles typically consist of aggregates of sub-micron platelets that have a particle diameter of less than 2 microns and a typical particle thickness of a few nanometers, depending on the surface area. In general, grade C particles show very high surface area and macro-porosity. Grade C particles are available in different grades with average surface areas of 300, 500 and 750 m 2 /g.


Application

Ultracapacitor electrodes. Anode materials for lithium-ion batteries. Conductive additive for battery electrodes. Electrically conductive inks. Thermally conductive films and coatings. Additive for lightweight composites. Films or coatings for EMI shielding. Substrate for chemical and biochemical sensors. Barrier material for packaging. Additive for super-strong concrete. Additive for metal-matrix composites.


Other Notes

Graphene nanoplatelets have naturally occurring functional groups like ethers, carboxyls, or hydroxyls that can react with atmospheric humidity to form acids or other compounds. These functional groups are present on the edges of the particles and their wt% varies with particle size. Surface area of 750 m 2 /g is an average surface area.

Names and Identifiers

IUPAC Name carbon
INCHI InChI=1S/C
InChi Key OKTJSMMVPCPJKN-UHFFFAOYSA-N
Canonical SMILES [C]
Isomeric SMILES [C]
RTECS MD9659600
PubChem CID 5462310
Molecular Weight 12.01

Certificates

Certificate of Analysis(COA)

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Chemical and Physical Properties

Melt Point(°C)3652-3697°C

Safety and Hazards(GHS)

Pictogram(s) GHS08,   GHS07
Signal Warning
Hazard Statements

H335:May cause respiratory irritation

H351:Suspected of causing cancer

Precautionary Statements

P261:Avoid breathing dust/fume/gas/mist/vapors/spray.

P280:Wear protective gloves/protective clothing/eye protection/face protection.

P405:Store locked up.

P501:Dispose of contents/container to ...

P271:Use only outdoors or in a well-ventilated area.

P304+P340:IF INHALED: Remove person to fresh air and keep comfortable for breathing.

P403+P233:Store in a well-ventilated place. Keep container tightly closed.

P203:Obtain, read and follow all safety instructions before use.

P318:if exposed or concerned, get medical advice.

P319:Get medical help if you feel unwell.

RTECS MD9659600

Related Documents

References

1. 杨胜凯,卓克垒等.  (2019)  Preparation of graphene by exfoliating graphite in aqueous fulvic acid solution and its application in corrosion protection of aluminum.  Journal of Colloid and Interface Science ,  543  (5): (263-272).  [PMID:]
2. 张轶铭 (Zhang Yiming).  (2021)  Facile Separator Modification Strategy for Trapping Soluble Polyphosphides and Enhancing the Electrochemical Performance of Phosphorus Anode.  Nano Letters,  (22): (1795–1803).  [PMID:]

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