Answer:
a) 7.96* 10⁻³ s
b) 0.0112 s
c) 1.645* 10⁻³⁸ g
Step-by-step explanation:
for the reaction
Cyclobutane (A) → 2 ethylene (B)
the reaction rate (first order )is
-dCa/dt = k*Ca
∫dCa/Ca = - ∫k*dt
ln(Ca/Ca₀) = -k*t → Ca = Ca₀*e^(-k*t)
therefore
a) the half- life represents the time required for the concentration Ca to drop to half of the initial value ( Ca=Ca₀/2) therefore
Ca₀/2 = Ca₀*e^(-k*t) → - ln 2 = -k*t → t = ln 2 / k =ln 2 / ( 87 1/s) = 7.96* 10⁻³ s
b) Ca = Ca₀*e^(-k*t) , for Ca= Wa/(V*M) , where Wa is weight:
Wa = Wa₀*e^(-k*t)
for Wa₀= 4 g and Wa = 4g - 2.5 g = 1.5 g
→ t= (1/k)* ln(Wa₀/Wa) = 1/( 87 1/s) * ln [ 4g/(1.5 g)] = 0.0112 s
c) for Wa₀= 4 g and t=1 s
Wa = Wa₀*e^(-k*t) = 1 g * e^(- 87 (1/s) *1 s )= 1.645* 10⁻³⁸ g ≈ 0