2 Answers

Julien Alary · Answer 1 · 2019-12-29T14:14:48+0000

Answer: 2.01

Step-by-step explanation:

$C_6H_5COOH\rightleftharpoons C_6H_5COO^-+H^+$

initial : c 0 0

eqm:
$c(1-\alpha)$
$c\alpha$
$c\alpha$

$K_a=(c\alpha* c\alpha)/(c(1-\alpha))$

when
$\alpha$ is very very small the, the expression will be,

$k_a=(c^2\alpha^2)/(c)=c\alpha^2\\\\\alpha=\sqrt{(k_a)/(c)}$

And,

$[H^+]=c\alpha$

Thus the expression will be,

[H^+]=√(k_a* c)

Now put all the given values in this expression, we get

$[H^+]=\sqrt{(6.4* 10^(-5))* 1.5}$

[H^+]=9.7* 10^(-3)M

pH=-log[H^+]

pH=-log[9.7* 10^(-3)]=2.01

Please log in or register to add a comment.