For `10^(-4) M BOH` (weak base) ,`K_(b)=5xx10^(-5))`:

For `10^(-4) M BOH` (weak base) ,`K_(b)=5xx10^(-5))`:
A. `alpha=0.707`
B. `[OH^(-)]=5xx10^(-5)M`
C. `pH=9.85`
D. All of these

Monjur Alahi

5 views

2025-01-04 04:42

1 Answers

Salim Ahmed Kawsar

`alpha=sqrt((5xx10^(-5))/(10^(-4)))gt0.1` So `(Calpha^(2))/(1-alpha)=K_(b)rArr 5xx10^(-5)=(10^(-4)alpha^(2))/(1-alpha)rArr 2alpha^(2)+alpha-1=0rArr alpha=0.5`
Hence `[OH^(-)]=Calpha=5xx10^(-5)&pH=9.7`

5 views Answered 2023-02-05 15:29

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