25 mL of 0.1 N H3PO3 is titrated against 0.1 N NaOH. The pH of the sol – InterviewSolution

1.	25 mL of 0.1 N H3PO3 is titrated against 0.1 N NaOH. The pH of the solution after addition of 62.5 mL of the base is : (Given : Ka1=1×10−3,Ka2=1×10−8 and Ka3=1×10−13)
Answer» $25 m L$ of $0.1 N H_{3} P O_{3}$ is titrated against $0.1 N N a O H$ . The $p H$ of the solution after addition of $62.5 m L$ of the base is : (Given : $K_{a 1} = 1 \times 10^{- 3}, K_{a 2} = 1 \times 10^{- 8} a n d K_{a 3} = 1 \times 10^{- 13}$ )

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