Calculate the `pH` of a solution obtained by mixing equal volume of `0.02MHOCl &0.2MCH_(3)COOH` solutions Given that `K_(a)(HOCl)=2xx10^(-4),K_(a)(CH_(3)COOH)=2xx10^(-5)`Also calculate `[OH^(-)],[OCl^(-)],[CH_(3)COOH]` at equilibrium .Take `log2=0.3`

Calculate the `pH` of a solution obtained by mixing equal volume of `0

1.	Calculate the `pH` of a solution obtained by mixing equal volume of `0.02MHOCl &0.2MCH_(3)COOH` solutions Given that `K_(a)(HOCl)=2xx10^(-4),K_(a)(CH_(3)COOH)=2xx10^(-5)`Also calculate `[OH^(-)],[OCl^(-)],[CH_(3)COOH]` at equilibrium .Take `log2=0.3`
Answer» Volume of final solutions becomes double . So , concentrated becomes half so after mixing: `C_(1)=0.01M,C_(2)=0.1M` `[H^(+)]=sqrt(C_(1)K_(a_(1))+C_(2)K_(a_(2)))=sqrt(2xx10^(-4)xx0.01+2xx10^(-5)xx0.1)=sqrt(2xx10^(-6)+2xx10^(-6))=2xx10^(-3)M` `:.pH=3-log2=2.7` `[OCl^(-)]=(0.01xx2xx10^(-4))/(2xx10^(-3))=1xx10^(-3)M,[CH_(3)COO^(-)]=(0.1xx2xx10^(-4))/(2xx10^(-3))=1xx10^(-3)M`, `[OH^(-)]=(K_(w))/([H^(+)]=(10^(-14))/(2xx10^(-3))=5xx10^(-12)M`

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Calculate the `pH` of a solution obtained by mixing equal volume of `0.02MHOCl &0.2MCH_(3)COOH` solutions Given that `K_(a)(HOCl)=2xx10^(-4),K_(a)(CH_(3)COOH)=2xx10^(-5)`Also calculate `[OH^(-)],[OCl^(-)],[CH_(3)COOH]` at equilibrium .Take `log2=0.3`

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