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Calculate the `pH` of the resulting solution formed by mixing the following solutions: (a) `20ml" of "0.2M" "Ba(OH)_(2)+30mL" of "0.1M" "HCl` (b) `2 mL" of "0.1" M "HCl + 10 ml" of "0.01" M "KOH` (c ) `10mL" of "0.1" M "H_(2)SO_(4)+10 mL" of "0.1 M KOH`. |
Answer» Milimoles of `H^(+)=10xx0.2+40xx0.1xx2=10` So `[H^(+)]=(10)/(50)M` `:.pH=0.7`. |
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