13465-41-3 Usage
Uses
Used in Organic Synthesis:
Permanganic acid is used as a reagent in organic synthesis for its strong oxidizing properties, enabling the conversion of various organic compounds into their oxidized forms.
Used in Chemical Processes:
Permanganic acid is used as a powerful oxidizing agent in various chemical processes, facilitating reactions that require the transfer of oxygen to other substances.
Used in Medical Field:
In the medical field, permanganic acid is used as a disinfectant and antiseptic due to its ability to kill or inhibit the growth of microorganisms, making it effective in preventing infections.
Used in Textile Industry:
Permanganic acid is used as a bleaching agent in the textile industry, where it whitens fabrics by breaking down the chemical bonds of color-causing substances, resulting in a lighter color.
Check Digit Verification of cas no
The CAS Registry Mumber 13465-41-3 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,3,4,6 and 5 respectively; the second part has 2 digits, 4 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 13465-41:
(7*1)+(6*3)+(5*4)+(4*6)+(3*5)+(2*4)+(1*1)=93
93 % 10 = 3
So 13465-41-3 is a valid CAS Registry Number.
InChI:InChI=1/Mn.H2O.3O/h;1H2;;;/q+1;;;;/p-1/rHMnO4/c2-1(3,4)5/h2H
13465-41-3Relevant academic research and scientific papers
The reaction of barium manganate with acids and their precursors
Kotai, Laszlo,Keszler, Agnes,Pato, Janos,Holly, Sandor,Banerji, Kalyan K.
, p. 966 - 968 (2007/10/03)
A simple and easy preparative route to obtain permanganic acid and permanganate salts from barium manganate and sulphuric acid is described. Sulphuric acid reacts with barium manganate to produce sparingly soluble barium sulphate and well-soluble permanganic acid or barium permanganate, these in turn can be used to prepare other metal permanganates.
Cathodic behavior of alkali manganese oxides from permanganate
Chen, Rongji,Whittingham, M. Stanley
, p. L64-L67 (2008/10/08)
The reaction of potassium, sodium, and lithium permanganate in water at 170°C leads directly to potassium, sodium, and lithium manganese dioxides, AyMnO · nH2O, with a R3m rhombohedral structure. These crystalline layered structures after dehydration readily and reversibly react with lithium through an intercalation mechanism. The capacity for lithium is a function of the alkali ion present, and the larger potassium ion maintains the capacity best. For lithium there is a tendency to convert to the spinel structure which leads to loss of capacity.