10 " mL of " `NaHC_(2)O_(4)` is oxidised by 10 " mL of " 0.02 M `MnO_(4)^(ɵ)`. Hence, 10 " mL of " `NaHC_(2)O_(4)` is neutralised by

100 mL of H_(2)O_(2) is oxidized by 100 mL of 1M KMnO_(4) in acidic medium ( MnO_(4)^(-) reduced to Mn^(+2) ) 100 mL of same H_(2)O_(2) is oxidized by v mL of 1M KMnO_(4) in basic medium ( MnO_(4)^(-) reduced to MnO_(2) ). Find the value of v:

10 g sample of H_(2)O_(2) just decolorised 100 ml of 0.1 M KMnO_(4) in acidic medium % by mass of H_(2)O_(2) in the sample is

100mL of H_2O_2 is oxidised by 100mL of 0.01M KMnO_4 in acidic medium (MnO_4^(ɵ) reduced to Mn^(2+) ). 100mL of the same H_2O_2 is oxidised by VmL of 0.01M KMnO_4 in basic medium. Hence V is

100mL of H_2O_2 is oxidised by 100mL of 0.01M KMnO_4 in acidic medium (MnO_4^(ɵ) reduced to Mn^(2+) ). 100mL of the same H_2O_2 is oxidised by VmL of 0.01M KMnO_4 in basic medium. Hence V is

100 mL of mixture of NaOH and Na_(2)SO_(4) is neutralised by 10 mL of 0.5 M H_(2) SO_(4) . Hence,the amount of NaOH in 100 mL solution is

After 20 " mL of " 0.1 M Ba(OH))_(2) is mixed with 10 " mL of " 0.2 M HClO_(4) , the concentration of overset(ɵ)(O)H ions is

'a' g KHC_(2)O_(4) are required to reduce 100mL of 0.02M KMnO_(4) in acid medium and 'b' g KHC_(2)O_(4) neutralises 100mL of 0.05M Ca(OH)_(2) then :

1 ml of H_(2)O_(2) solution given 10 ml of O_(2) at NTP. It is :

Calculate the mass of oxalic acid (H_(2)C_(2)O_(4)) which can be oxidised to CO_(2) by 100.0mL of MnO_(4)^(-) solution, 10 mL of which is capable of oxidising 50.0mL of 1.0NI^(-) to I_(2) ?

100 mL of NaHC_(2)O_(4) required 50 mL of 0.1M KMnO_(4) solution in acidic medium. Volume of 0.1M NaOH required by 100 mL of NaHC_(2)O_(4) is :