What will be the value of activation energy ( Ea in kJ ) and rate constant ( k in min-1 ) for the given equation at 27°C ? The equation: lnk = - 2576/T+ 12.1

Question

What will be the value of activation energy ( Ea in kJ ) and rate constant ( k in min-1 ) for the given equation at 27°C ? The equation: lnk = - 2576/T+ 12.1  (A)  Ea = 21.416 kJ and k =0.335 × 102 min-1  (B)  Ea = 11.46 kJ and k =0.335×102 min-1  (C)  Ea = 20.23 kJ and k =0.43 × 102 min-1  (D)  Ea = 21.416 kJ and k =1.44 × 102 min-1

Tardigrade Admin · Accepted Answer

ln k=-(2576/T)+12.1 ldots(i) Arrhenius equation is: k=Ae-Ea / RT Taking logarithm on both sides ln k=ln A-(Ea/RT) ldots(ii) Comparing equation (i) and (ii) , we get ln A=12.1, (Ea/R)=2576 Ea=2576×8.314×10-3 =21.416 kJ ln k=(-2576/300)+12.1 =-8.59+12.1=3.51 k=33.448 min-1 =0.335 ×102 min-1

Q. What will be the value of activation energy ( $E_{a}$ in $k J$ ) and rate constant ( $k in mi n^{- 1}$ ) for the given equation at $2 7^{\circ} C$ ? The equation : $l nk = - 2576/ T + 12.1$

$E_{a} = 21.416 k J$ and $k = 0.335 \times 1 0^{2} mi n^{- 1}$

$E_{a} = 11.46 k J$ and $k = 0.335 \times 1 0^{2} mi n^{- 1}$

$E_{a} = 20.23 k J$ and $k = 0.43 \times 1 0^{2} mi n^{- 1}$

$E_{a} = 21.416 k J$ and $k = 1.44 \times 1 0^{2} mi n^{- 1}$

Q. What will be the value of activation energy ( Ea​ in kJ ) and rate constant ( kinmin−1 ) for the given equation at 27∘C ? The equation : lnk=−2576/T+12.1

Ea​=21.416kJ and k=0.335×102min−1

Ea​=11.46kJ and k=0.335×102min−1

Ea​=20.23kJ and k=0.43×102min−1

Ea​=21.416kJ and k=1.44×102min−1

Q. What will be the value of activation energy ( $E_{a}$ in $k J$ ) and rate constant ( $k in mi n^{- 1}$ ) for the given equation at $2 7^{\circ} C$ ? The equation : $l nk = - 2576/ T + 12.1$

$E_{a} = 21.416 k J$ and $k = 0.335 \times 1 0^{2} mi n^{- 1}$

$E_{a} = 11.46 k J$ and $k = 0.335 \times 1 0^{2} mi n^{- 1}$

$E_{a} = 20.23 k J$ and $k = 0.43 \times 1 0^{2} mi n^{- 1}$

$E_{a} = 21.416 k J$ and $k = 1.44 \times 1 0^{2} mi n^{- 1}$