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330825

Sigma-Aldrich

Manganese(II) acetate

98%

Synonyme(s) :

Diacetylmanganese, Manganous acetate

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About This Item

Formule linéaire :
(CH3CO2)2Mn
Numéro CAS:
Poids moléculaire :
173.03
Numéro CE :
Numéro MDL:
Code UNSPSC :
12352103
ID de substance PubChem :
Nomenclature NACRES :
NA.23

Pureté

98%

Forme

powder

Pertinence de la réaction

core: manganese

Chaîne SMILES 

CC(=O)O[Mn]OC(C)=O

InChI

1S/2C2H4O2.Mn/c2*1-2(3)4;/h2*1H3,(H,3,4);/q;;+2/p-2

Clé InChI

UOGMEBQRZBEZQT-UHFFFAOYSA-L

Description générale

Manganese (II) acetate is a crystalline solid that can be synthesized by reacting acetic acid withmanganese (II,III) oxide or manganese(II) carbonate. It is used as a sol-gel precursor to synthesize thin films and a critical precursor for the synthesis of cathode-active materials for rechargeable batteries.

Application

Manganese(II) acetate can be used:
  • As a precursor to synthesize manganese oxide nanoparticles for various applications such as gas sensing using the solvent-free method.
  • To fabricate electrodes for high-performance Li-ion batteries.
  • Suitable for the fabrication of spinel/layered heterostructured cathode materials for high-capacity and high-rate Li-Ion batteries.
  • As a starting material to prepare Mn-based catalysts.
  • To fabricate pyridine manganese halide scintillators for X-ray imaging.

Pictogrammes

Health hazard

Mention d'avertissement

Warning

Mentions de danger

Conseils de prudence

Classification des risques

Aquatic Chronic 3 - STOT RE 2 Inhalation

Organes cibles

Brain

Code de la classe de stockage

11 - Combustible Solids

Classe de danger pour l'eau (WGK)

WGK 3

Équipement de protection individuelle

dust mask type N95 (US), Eyeshields, Gloves


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Jingheng Ning et al.
Sensors (Basel, Switzerland), 19(24) (2019-12-18)
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Ultrafast spray pyrolysis fabrication of a nanophase ZnMn 2 O 4 anode towards high-performance Li-ion batteries
Longhai Zhang, et al.},
Royal Society of Chemistry Advances, 5, 13667-13673 (2015)
Performance and mechanism about MnOx species included in MnOx/TiO2 catalysts for SCR at low temperature
Junlin Xie, et al.
Catalysis Communications, 28, 77-81 (2012)
Sham Rampersaud et al.
Nano letters, 16(12), 7357-7363 (2016-12-15)
Although a range of nanoparticles have been developed as drug delivery systems in cancer therapeutics, this approach faces several important challenges concerning nanocarrier circulation, clearance, and penetration. The impact of reducing nanoparticle size on penetration through leaky blood vessels around
Fangchun Han et al.
Chemistry, an Asian journal, 12(17), 2284-2290 (2017-08-02)
This work demonstrates a facile in situ synthesis of cobalt-manganese mixed sulfide (CoMn-S) nanocages on reduced graphene oxide (RGO) sheets by using a crystalline Co-Mn precursor as the sacrificial template. The CoMn-S/RGO hybrid was applied as the anode for Li-ion

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