Respuesta :
This is an incomplete question, here is a complete question.
A 0.130 mole quantity of NiCl₂ is added to a liter of 1.20 M NH₃ solution. What is the concentration of Ni²⁺ ions at equilibrium? Assume the formation constant of Ni(NH₃)₆²⁺ is 5.5 × 10⁸
Answer : The concentration of [tex]Ni^{2+}[/tex] ions at equilibrium is, [tex]4.31\times 10^{-8}[/tex]
Explanation : Given,
Moles of [tex]NiCl_2[/tex] = 0.130 mol
Volume of solution = 1 L
[tex]Concentration=\frac{Moles }{Volume}[/tex]
Concentration of [tex]NiCl_2[/tex] = Concentration of [tex]Ni^{2+}[/tex] = 0.130 M
Concentration of [tex]NH_3[/tex] = 1.20 M
[tex]K_f=5.5\times 10^8[/tex]
The equilibrium reaction will be:
[tex]Ni^{2+}(aq)+6NH_3(aq)\rightarrow [Ni(NH_3)_6]^{2+}[/tex]
Initial conc. 0.130 1.20 0
At eqm. x [1.20-6(0.130)] 0.130
= 0.42
The expression for equilibrium constant is:
[tex]K_f=\frac{[Ni(NH_3)_6^{2+}]}{[Ni^{2+}][NH_3]^6}[/tex]
Now put all the given values in this expression, we get:
[tex]5.5\times 10^8=\frac{(0.130)}{(x)\times (0.42)^6}[/tex]
[tex]x=4.31\times 10^{-8}[/tex]
Thus, the concentration of [tex]Ni^{2+}[/tex] ions at equilibrium is, [tex]4.31\times 10^{-8}[/tex]
