form
solid
solubility
2-propanol: soluble 2 mg/mL (IPA), DMSO: soluble 2 mg/mL (dimethyl sulfoxide), NMP: soluble 2 mg/mL (1-methyl-2-pyrrolidinone), THF: soluble 2 mg/mL (tetrahydrofuran ), dichloromethane: soluble 2 mg/mL (DCM), ethyl acetate: soluble 2 mg/mL (EtOAc), soluble (dispersible in organic solvents)
General description
This graphene oxide product has been formulated to make the graphene oxide dispersible in many anhydrous organic solvents including dichloromethane (DCM), dimethyl sulfoxide (DMSO), 2-propanol (IPA), tetrahydrofuran (THF), and 1-methyl-2-pyrrolidinone (NMP).
Application
Our reformulated non-covalently modified graphene oxide allows you to expore the unique properties of graphene oxide in new ways that were not previously possible. You can use our hydrophobic graphene oxide to make composites with polymers and other nanomaterials that are incompatiable with or insoluble in water. Additionaly, graphene oxide may be reduced to give electrically conductive composites that have been used in applications such as fuel cells, photocatalysis, supercapacitors, lithium-ion batteries, sodium-ion batteries, and lithium sulfur batteries.
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Warning
hcodes
Hazard Classifications
Acute Tox. 4 Oral
Storage Class
11 - Combustible Solids
wgk
WGK 3
Regulatory Information
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Articles
Advanced technologies for energy conversion and storage aim to improve performance and reduce environmental impact.
Graphene/Polyaniline Nanofiber Composites as Supercapacitor Electrodes.
Zhang K, et al.
Chemistry of Materials, 22(4), 1392-1401 (2010)
Yongming Sun et al.
ACS nano, 5(9), 7100-7107 (2011-08-10)
Self-assembled hierarchical MoO(2)/graphene nanoarchitectures have been fabricated on a large scale through a facile solution-phase process and subsequent reduction of the Mo-precursor/graphene composite. The as-formed MoO(2)/graphene nanohybrid as an anode material for lithium-ion batteries exhibits not only a highly reversible
Jun Zhang et al.
Nano letters, 12(9), 4584-4589 (2012-08-17)
Design and preparation of efficient artificial photosynthetic systems for harvesting solar energy by production of hydrogen from water splitting is of great importance from both theoretical and practical viewpoints. ZnS-based solid solutions have been fully proved to be an efficient
Global Trade Item Number
| SKU | GTIN |
|---|---|
| 921556-1G | 04065266625028 |
