If $"0.50 M"$ of $"NH"_4"OH"$ were to dissociate in water, and $K_b = 1.773 xx 10^(-5)$ , what is the resultant $"pH"$ at equilibrium?

Question

If $"0.50 M"$ of $"NH"_4"OH"$ were to dissociate in water, and $K_b = 1.773 xx 10^(-5)$ , what is the resultant $"pH"$ at equilibrium?

1 Answer

Impact of this question

2277 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2017-06-08T03:24:18

$pH=11.47$

Explanation:

Let's make an (R)ICE table for the dissociation of $NH_4OH$ (the base you get when you dissolve $NH_3$ in water.)

$NH_3+H_2O rightleftharpoons NH_4OH$

Suppose that $x$ $M$ of $NH_4OH$ then dissociated. ( $x>=0$ )

Reaction: $NH_4OH " "rightleftharpoons" " NH_4^+ + OH^-$

Initial: $" "" ""0.50 M"$ $" "" "" "$ $"0 M"$ $" "" "" "$ $"0 M"$

Change: $" "-x" M"$ $" "$ $" "+x$ $"M"" "" "$ $+x$ $"M"$

Equil.: $" "(0.50-x)$ $"M"$ $" "$ $x$ $"M"" "" "$ $" "x$ $"M"$

Using the mass action expression for $K_b$ :

$K_b=([NH_4^(+)][OH^-])/([NH_4OH]) = (x^2)/(0.50-x)$

Solve for $x$ :

given that $K_b=1.773*10^-5$ ,

$x=0.002969$ $M$

Thus $[OH^-]=0.002969$ $M$

Evaluate the $pH$ :

$color(blue)(pH) = 14 - pOH = 14 + log[OH^-] = color(blue)(11.47)$

to two sig figs. :)

Source: https://www.ck12.org/chemistry/Calculating-Ka-and-Kb/lesson/Calculating-Ka-and-Kb-CHEM/?referrer=featured_content

Science

Math

Humanities

... and beyond

If $"0.50 M"$ of $"NH"_4"OH"$ were to dissociate in water, and $K_b = 1.773 xx 10^(-5)$ , what is the resultant $"pH"$ at equilibrium?

1 Answer

Explanation:

Related questions

Impact of this question

Science

Math

Humanities

... and beyond

If "0.50 M""0.50 M" of "NH"_4"OH""NH"_4"OH" were to dissociate in water, and K_b = 1.773 xx 10^(-5)K_b = 1.773 xx 10^(-5), what is the resultant "pH""pH" at equilibrium?

1 Answer

Explanation:

Related questions

Impact of this question

If $"0.50 M"$ of $"NH"_4"OH"$ were to dissociate in water, and $K_b = 1.773 xx 10^(-5)$ , what is the resultant $"pH"$ at equilibrium?