The rate of the chemical reaction doubles for an increase of 10 K in absolute temperature from 298 K . Calculate Ea

Question

The rate of the chemical reaction doubles for an increase of 10 K in absolute temperature from 298 K . Calculate Ea  (A) 52.988 kJ (B) 42.024 kJ (C) 52.898 kJ (D) 51.898 kJ

Tardigrade Admin · Accepted Answer

log (k2/k1)=(Ea/2.303 R)[(T2-T1/T1 T2)] (k2/k1)=2, T1=298 K, T2=308 K R=8.314 J K-1 mol-1 log 2=(Ea/2.303 × 8.314) ×[(308-298/308 × 298)] 0.3010=(Ea/2.303 × 8.314) × (10/298 × 308) ∴ Ea=(0.3010 × 2.303 × 8.314 × 298 × 308/10) =52.898 k J

Q. The rate of the chemical reaction doubles for an increase of 10K in absolute temperature from 298K . Calculate Ea​

52.988 kJ

42.024 kJ

52.898 kJ

51.898 kJ

logk1​k2​​=2.303REa​​[T1​T2​T2​−T1​​] k1​k2​​=2,T1​=298K,T2​=308K R=8.314JK−1mol−1 log2=2.303×8.314Ea​​×[308×298308−298​] 0.3010=2.303×8.314Ea​​×298×30810​ ∴Ea​=100.3010×2.303×8.314×298×308​ =52.898kJ

Q. The rate of the chemical reaction doubles for an increase of $10 K$ in absolute temperature from $298 K$ . Calculate $E_{a}$