A current of `1.0A` is passed for `96.5s` trhough a `200mL` solution of `0.05 M LiCl` solution. Find `a.` The volume of gases produced at STP `b.` The `pH` of solution at the end of electrolysis

A current of `1.0A` is passed for `96.5s` trhough a `200mL` solution o

1.	A current of `1.0A` is passed for `96.5s` trhough a `200mL` solution of `0.05 M LiCl` solution. Find `a.` The volume of gases produced at STP `b.` The `pH` of solution at the end of electrolysis
Answer» Number of faradays passed `=(It)/(96500)=(1.0xx96.5)/(96500)=10^(-3)F` Cathode`: 2H^(o+)+2e^(-) rarr H_(2) ` `(Li^(o+)` will remain in solution `)` `2F-=1 mol `of `H_(2)` or `1xx10^(-3)F-=0.5xx10^(-3)` mole of `H_(2)` `-=0.5xx10^(-3)xx22400mL Cl_(2)` at `STP` `=11.2mL Cl_(2)` at STP In solution, `Li^(o+)` and `overset(c-)(O)H` are left. To calculate the `pH` of solution, first calculate the millimoles of `H^(o+)` ions electrolyzed. `implies` mmoles `H^(o+)` ions electrolyzed `=mEq` of `H^(o+)` ions electrolyzed `=` Number of faradays passed `=10^(-3)F` Since `H_(2)O` produces equal number of `H^(o+)` and `overset(c-)(O)H` ions,mmoles `overset(c-)(O)H` ions left in excess `=10^(-3)` `implies [overset(c-)(O)H]~~(10^(-3))/(200//1000)=5xx10^(-3)M` `[` Neglect `overset(c-)(O)H` from dissociation of `H_(2)O]` `implies pOH=-log (5xx10^(3))=3-log 5=2.3` `impliespH=14-pOH=14-2.3=11.7`

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A current of `1.0A` is passed for `96.5s` trhough a `200mL` solution of `0.05 M LiCl` solution. Find `a.` The volume of gases produced at STP `b.` The `pH` of solution at the end of electrolysis

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