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About This Item
Linear Formula:
Mn3O4
CAS Number:
Molecular Weight:
228.81
NACRES:
NA.23
PubChem Substance ID:
UNSPSC Code:
12352303
EC Number:
215-266-5
MDL number:
InChI key
GVNFAUMGUISVJW-UHFFFAOYSA-N
InChI
1S/3Mn.4O
SMILES string
O=[Mn]O[Mn]O[Mn]=O
assay
97%
form
powder
density
4.8 g/mL at 25 °C (lit.)
application(s)
battery manufacturing
Quality Level
Related Categories
General description
Manganese(II,III) oxide is a transition metal oxide that is formed by annealing manganese oxide in the air above 1000°C. It can be used for a variety of applications such as catalysis, electrochromic devices, and other energy storage applications.
signalword
Warning
hcodes
Hazard Classifications
Repr. 2
Storage Class
11 - Combustible Solids
wgk
nwg
flash_point_f
Not applicable
flash_point_c
Not applicable
ppe
dust mask type N95 (US), Eyeshields, Gloves
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Chemistry of elements (2012)
Nancy Birkner et al.
Proceedings of the National Academy of Sciences of the United States of America, 110(22), 8801-8806 (2013-05-15)
Previous measurements show that calcium manganese oxide nanoparticles are better water oxidation catalysts than binary manganese oxides (Mn3O4, Mn2O3, and MnO2). The probable reasons for such enhancement involve a combination of factors: The calcium manganese oxide materials have a layered
David M Robinson et al.
Journal of the American Chemical Society, 135(9), 3494-3501 (2013-02-09)
Manganese oxides occur naturally as minerals in at least 30 different crystal structures, providing a rigorous test system to explore the significance of atomic positions on the catalytic efficiency of water oxidation. In this study, we chose to systematically compare
Y Zhang et al.
Journal of hazardous materials, 248-249, 81-88 (2013-01-23)
Several MCM-41 materials were synthesized at different conditions by hydrothermal procedure using cheap and easily available industrial water glass as silica source. Fe doped manganese-based oxide/MCM-41 sorbents were prepared by a sol-gel method. The effects of loadings of metal oxide
Andres M Cardenas-Valencia et al.
Rapid communications in mass spectrometry : RCM, 27(5), 635-642 (2013-02-16)
In situ analytical techniques that require the storage and delivery of reagents (e.g., acidic or basic solutions) have inherent durability limitations. The reagentless electrolytic technique for pH modification presented here was developed primarily to ease and to extend the longevity
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