Answer:
Option D, Concentration of NO2 decomposes after 4.00 s = 0.77 mol
Explanation:
[tex]rate\;constant = 0.255\;M^{-1}s{-1}[/tex]
Time (t) = 4.00\;s
Initial concentration of NO2 = 1.33 M
Integrated law for second order reaction:
[tex]\frac{1}{[A]}=\frac{1}{[A]_0} =kt[/tex]
Where, [A] = Concentration after time, t
[A]0 = Intitial concentration, k = rate constant, t = time
On substituting values in the above
[tex]\frac{1}{[A]}=\frac{1}{1.33} =0.255 \times 4.00[/tex]
[tex]\frac{1}{[A]} =1.772[/tex]
[A] = 0.5644 M
Concentration of NO2 decomposes after 4.00 s = 1.33 - 0.5644 = 0.7656 M
No. of mole = Molarity * volume
= 0.7656 * 1
= 0.7656 mol 0r 0.77 mol
