Respuesta :
The question is incomplete ,the complete question is:
Titanium(IV) chloride decomposes to form titanium and chlorine, like this:
[tex]TiCl_4\rightleftharpoons Ti+2Cl_2[/tex]
At a certain temperature, a chemist finds that a 5.2 L reaction vessel containing a mixture of titanium(IV) chloride, titanium, and chlorine at equilibrium has the following composition:
Compound amount
[tex]TiCl_4[/tex] 4.18 g
Ti 1.32 g
[tex]Cl_2[/tex] 1.08g
Calculate the value of the equilibrium constant for this reaction. Round your answer to significant digits.
Answer:
[tex]8.6\times 10^{-6}[/tex] the value of the equilibrium constant for this reaction.
Explanation:
[tex]Concentration = \frac{Moles}{Volume (L)}[/tex]
We have : Volume of vessel = 5.2 L
Concentration of Titanium(IV) chloride at equilibrium =:
[tex][TiCl_4]=\frac{4.18 g}{190 g/mol\times 5.2 L}=0.004231 mol/L[/tex]
Concentration of Titanium at equilibrium =:
[tex][Ti]=\frac{1.32 g}{48 g/mol\times 5.2 L}=0.005288 mol/L[/tex]
Concentration of chloride at equilibrium =:
[tex][Cl_2]=\frac{1.08 g}{71 g/mol\times 5.2 L}=0.002925 mol/L[/tex]
[tex]TiCl_4\rightleftharpoons Ti+2Cl_2[/tex]
The equilibrium expression will be given as:
[tex]K_c=[Cl_2]^2[/tex]
The concentration of the solids and liquid is taken as unity.
[tex]=(0.002925 mol/L)^2}[/tex]
[tex]K_c=8.6\times 10^{-6}[/tex]
[tex]8.6\times 10^{-6}[/tex] the value of the equilibrium constant for this reaction.
