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प्रश्न
The decomposition of phosphine
\[\ce{4PH3_{(g)} -> P4_{(g)} + 6H2_{(g)}}\]
has the rate law, Rate = k [PH3].
The rate constant is 6.0 × 10−4 s−1 at 300 K and activation energy is 3.05 × 105 J mol−1. What is the value of rate constant at 310 K? (R = 8.314 J K−1 mol−1)
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उत्तर
Given:
Reaction: \[\ce{4PH3_{(g)} -> P4_{(g)} + 6H2_{(g)}}\]
Rate law: Rate = k [PH3] → First-order reaction
k1 = 6.0 × 10−4 s−1 at T1 = 300 K
T2 = 310 K
Ea = 3.05 × 105 J mol−1
R = 8.314 J mol−1 K−1
Use the two-point Arrhenius equation:
`ln(k_2/k_1) = E_a/R ((T_2 - T_1)/(T_1T_2))`
`ln(k_2/(6.0 xx 10^-4)) = (3.05 xx 10^5)/8.314 ((310 - 300)/(300 xx 310))`
`ln(k_2/(6.0 xx 10^-4)) = 36675.5 ((10)/(93000))`
`ln(k_2/(6.0 xx 10^-4)) = 36675.5 xx 1.0753 xx 10^-4`
`ln(k_2/(6.0 xx 10^-4)) = 3944`
`(k_2/(6.0 xx 10^-4)) = e^3.944`
= 51.6
⇒ k2 = 6.0 × 10−4 × 51.6
≈ 0.03096 s−1
∴ k2 = 3.10 × 10−4 s−1 at 310 K
