Question #62d6f

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Question #62d6f

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Answer 1 · 2015-10-20T22:53:47

$p H = 11.13$ $p"H" = 11.13$

Explanation:

The idea here is to use the ammonium ion's acid dissociation constant, $K_{a}$ $K_a$ , to find the value of ammonia's base dissociation constant, $K_{b}$ $K_b$ .

The relationship between the base dissocaition constant, the acid dissociation constant, and water's self-ionization constant, $K_{W}$ $K_W$ , is given by the equation

$K_{W} = K_{a} \times K_{b}$ $K_W = K_a xx K_b$

In your case, the base dissociation constant of ammonia will be

$K_{b} = \frac{K_{W}}{K_{a}} = \frac{10^{- 14}}{5.62 \cdot 10^{- 10}} = 1.78 \cdot 10^{- 5}$ $K_b = K_W/K_a = 10^(-14)/(5.62 * 10^(-10)) = 1.78 * 10^(-5)$

To determine the pH of the solution, you first need to know the $p OH$ $p"OH"$ of the solution, which in turn requires the cocnentration of hydroxide ions, ${OH}^{-}$ $"OH"^(-)$ .

Ammonia will react with water to form ammonium and hydroxide ions. Use an ICE table to determine the equilibrium concentration of hydroxide ions

${NH}_{3(aq]} + H_{2} O_{(l]} ⇌ {NH}_{4(aq]}^{+} + {OH}_{(aq]}^{-}$ $"NH"_text(3(aq]) " "+" " "H"_2"O"_text((l]) " "rightleftharpoons" " "NH"_text(4(aq])^(+) " "+" " "OH"_text((aq])^(-)$

$I 0.1 00$ $color(purple)("I")" " " " 0.1" " " " " " " " " " " " " " " " " " " "0" " " " " " " " " " " "0$
$C x - x (+ x) (+ x)$ $color(purple)("C")" " color(white)(x)-x" " " " " " " " " " " " " " " " " "(+x)" " " " " " " " "(+x)$
$E x 0.1 - x \times x x x$ $color(purple)("E")" " color(white)(x)0.1-x" " " " " " " " " " " " " " " "color(white)(xx)x" " " " " " " " " "color(white)(x)x$

By definition, the base dissociation constant will be

$K_{b} = \frac{[{NH}_{4}^{+}] \cdot [{OH}^{-}]}{[{NH}_{3}]} = \frac{x \cdot x}{0.1 - x}$ $K_b = (["NH"_4^(+)] * ["OH"^(-)])/(["NH"_3]) = (x * x)/(0.1 - x)$

Because the value of $K_{b}$ $K_b$ is so small, you can say that

$(0.1 - x) \approx 0.1$ $(0.1 - x) ~~ 0.1$

This means that you have

$K_{b} = \frac{x^{2}}{0.1} = 1.78 \cdot 10^{- 5}$ $K_b = x^2/0.1 = 1.78 * 10^(-5)$

$x = \sqrt{0.1 \cdot 1.78 \cdot 10^{- 5}} = 0.001334$ $x = sqrt(0.1 * 1.78 * 10^(-5)) = 0.001334$

This means that you have

$[{OH}^{-}] = x = 0.001334 M$ $["OH"^(-)] = x = "0.001334 M"$

The $p OH$ $p"OH"$ of the solution will be

$p OH = - log ([{OH}^{-}])$ $p"OH" = -log(["OH"^(-)])$

$p OH = - log (0.001334) = 2.87$ $p"OH" = -log(0.001334) = 2.87$

The pH of the solution will thus be

$p H = 14 - p OH = 14 - 2.87 = 11.13$ $p"H" = 14 - p"OH" = 14 - 2.87 = color(green)(11.13)$

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Question #62d6f

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