Answer:
Kc → 0.08
Explanation:
We propose the situations for the equilibrium:
2NOCl (g) ⇄ 2NO(g) + Cl₂(g)
Initial 2 mol - -
React x x x/2
x amount has reacted before the equilibrium is reached. We got x amount of NO and x/2 of chlorine, according to stoichiometry.
Eq 2 mol - x 0.66 x/2
As we got [NO] in the equilibrum, we can determine the amount that has reacted.
0 + x = 0.66 → So 0.66 are the moles that've reacted.
2 mol - 0.66 = 1.34 moles → The amount that we had of NOCl when the requilibrium is reached.
0.66 /2 = 0.33 moles of Cl₂
Let's make the expression for Kc
Kc = [NO]² . [Cl₂] / [NOCl]²
Kc = 0.66² . 0.33 / 1.34²
Kc = 0.08
Answer:
The equilibrium constant Kc = 0.080
Explanation:
Step 1: data given
Number of moles NOCl = 2.00 moles
Volume = 1.00 L
After heating the number of moles NO = 0.66 moles
Step 2: The balanced equation
2NOCL(g) ⇌ 2NO(g)+ Cl2(g)
Step 3: Calculate initial concentration
Concentration = moles / volume
[NOCl] = 2.00 moles / 1L = 2 M
[NO] = 0M
[Cl2]= 0M
Step 4: Calculate concentration at the equilibrium
[NOCl] = 2M - 2X
[NO] = 2X M = 0.66 M
[Cl2]= XM
X = 0.66/2 = 0.33
[NOCl] = 2M - 2*0.33 = 1.34 M
[NO] = 2X M = 0.66 M
[Cl2]= XM = 0.33 M
Step 5: Calculate Kc
Kc = [Cl2]*[NO]² / [NOCl]²
Kc = (0.33* 0.66² )/ 1.34²
Kc = 0.080
The equilibrium constant Kc = 0.080
