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  2. Potassium permanganate - Wikipedia

    en.wikipedia.org/wiki/Potassium_permanganate

    As potassium permanganate is titrated, the solution becomes a light shade of purple, which darkens as excess of the titrant is added to the solution. In a related way, it is used as a reagent to determine the Kappa number of wood pulp. For the standardization of KMnO 4 solutions, reduction by oxalic acid is often used. [47]

  3. Oxalic acid - Wikipedia

    en.wikipedia.org/wiki/Oxalic_acid

    Oxalic acid is used by some beekeepers as a miticide against the parasitic varroa mite. [52] Dilute solutions (0.05–0.15 M) of oxalic acid can be used to remove iron from clays such as kaolinite to produce light-colored ceramics. [53] Oxalic acid can be used to clean minerals like many other acids. Two such examples are quartz crystals and ...

  4. Permanganate - Wikipedia

    en.wikipedia.org/wiki/Permanganate

    A permanganate can oxidize an amine to a nitro compound, [7] [8] a secondary alcohol to a ketone, [9] a primary alcohol or aldehyde to a carboxylic acid, [10] [11] a terminal alkene to a carboxylic acid, [12] oxalic acid to carbon dioxide, [13] and an alkene to a diol. [14] This list is not exhaustive. In alkene oxidations one intermediate is a ...

  5. Sodium oxalate - Wikipedia

    en.wikipedia.org/wiki/Sodium_oxalate

    It is the sodium salt of oxalic acid. It contains sodium cations Na + and oxalate anions C 2 O 2− 4. It is a white, crystalline, odorless solid, that decomposes above 290 °C. [2] Sodium oxalate can act as a reducing agent, and it may be used as a primary standard for standardizing potassium permanganate (KMnO 4) solutions.

  6. Calcium oxalate - Wikipedia

    en.wikipedia.org/wiki/Calcium_oxalate

    Calcium oxalate is a combination of calcium ions and the conjugate base of oxalic acid, the oxalate anion. Its aqueous solutions are slightly basic because of the basicity of the oxalate ion. The basicity of calcium oxalate is weaker than that of sodium oxalate, due to its lower solubility in water.

  7. Potassium manganate - Wikipedia

    en.wikipedia.org/wiki/Potassium_manganate

    Potassium manganate is the inorganic compound with the formula K 2 MnO 4. This green-colored salt is an intermediate in the industrial synthesis of potassium permanganate (KMnO 4), a common chemical. [1] Occasionally, potassium manganate and potassium permanganate are confused, but each compound's properties are distinct.

  8. Glycol cleavage - Wikipedia

    en.wikipedia.org/wiki/Glycol_cleavage

    Following this dihydroxylation, the KMnO 4 can then cleave the glycol to give aldehydes or ketones. The aldehydes will react further with (KMnO 4 ), being oxidized to become carboxylic acids . Controlling the temperature, concentration of the reagent and the pH of the solution can keep the reaction from continuing past the formation of the glycol.

  9. Ferric oxalate - Wikipedia

    en.wikipedia.org/wiki/Ferric_oxalate

    Structure of hydrated ferric oxalate Color code: red=O, white = H, blue = Fe, gray = C. Room temperature Mössbauer spectrum of Fe 2 (C 2 O 4) 3 ·4H 2 O. According to X-ray crystallography of the tetrahydrate Fe 2 (C 2 O 4) 3 · 4 H 2 O, iron is octahedral. The oxalate ligands are bridging. Some through all four oxygen atoms, some with two ...

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