log 1.5 × 107= log A -((2/2.303 R )) In the above equation, what is the value of Arrhenius factor?

Question

log 1.5 × 107= log A -((2/2.303 R )) In the above equation, what is the value of Arrhenius factor? (A) 3 × 106 (B) 6.3 × 109 (C) 5.42 × 1013 (D) 5.42 × 1010

Tardigrade Admin · Accepted Answer

log k= log A -( E a /2.303 RT ) log 1.5 × 107= log A -(22011/2.303 × 8.314) 7+ log 1.5= log A -3.5591 log A - log 1.5=10.5591 log ( A /1.5 s -1)=10.5591 ( A /1.5 s -1)= anti- log (10.5591)=3.615 × 1010 Now, A =3.615 × 1010 × 1.5 =5.4225 × 1010 s -1

Q. $lo g 1.5 \times 1 0^{7} = lo g A - (\frac{2}{2.303 R})$ In the above equation, what is the value of Arrhenius factor?

$3 \times 1 0^{6}$

$6.3 \times 1 0^{9}$

$5.42 \times 1 0^{13}$

$5.42 \times 1 0^{10}$

Q. log1.5×107=logA−(2.303R2​) In the above equation, what is the value of Arrhenius factor?

3×106

6.3×109

5.42×1013

5.42×1010

logk=logA−2.303RTEa​​ log1.5×107=logA−2.303×8.31422011​ 7+log1.5=logA−3.5591 logA−log1.5=10.5591 log1.5s−1A​=10.5591 1.5s−1A​= anti−log(10.5591)=3.615×1010 Now, A=3.615×1010×1.5 =5.4225×1010s−1

Q. $lo g 1.5 \times 1 0^{7} = lo g A - (\frac{2}{2.303 R})$ In the above equation, what is the value of Arrhenius factor?

$3 \times 1 0^{6}$

$6.3 \times 1 0^{9}$

$5.42 \times 1 0^{13}$

$5.42 \times 1 0^{10}$