Question

Question 18 The following initial rate data were found for the reaction [MnOslo 1x 103 2 x 10 2 x 10 2 x 10 What is the value of the rate constant? 2MnO, +5H,C204 + 6H* 2Mn?' + 1000, +8H,0 [H2C2O4) (Hlo 1x 10 1.0 1x 10 2 x 10 2 x 10 Initial Rate (M/s) 2 x 10" 8x 10" 1.6 x 10 1.6 x 10 200M51 2x 10-M51 200 M? 2 x 105 M21

Answer 1

- Ans. Given given is - 2+ 2 MnO4 + 5 H₂ Goy +64 + 2 Mnt & loco + 8 Rate law for this reaction can be written as - Rate = k [ MnouId [ Hycoon] [H+JY k= Rate constant K = Order of reaction with respect to [ Mon 05] B = Order of reaction with respect to [SOy] Y = Order of Meaction with srespect to (H+) According to given data calculate the order of Realtion - (Rate), = K[ Moon ]d[ Hz ] B [H+JY 2x1004 - * [1410-3]• [ 1x10-33[ 13" - 0 (Rak), = k [2x16-3ja [1x10] B [iJY. 8x104 = K [ 2 X103ją [ 1x16 %J P [1J - © Divide equation o by equation ③ 2x109 - K x [1X1o3j* [ixió? JB CITY K [ 2x10-3]« [1x10-3JP Lijy 8X10-4 ☆ = ()* ()? - (1)

Order of Meaction with slespect to is [M60-] is 2. (Rate), = k C Moor] ^ [ 45C20yJØ [ H+Y 106 X10 ? -- K [2x16}] [ 2iX10*3] [1JY Divide ea by ® 8x10 4 = K[ 2x10-3 ] [ 1x10 31² [igr 1.6810*9 KC 2X16*3]*[ 2x10-?]® [179 exo" - (2) lo xx xio= () ()' = () Order of steaction with respect to [Hz CxOy] is t. (Rak.)y = k [ Mooij I* [ .64043® [H+JY 1•6X163 = K [ 2x103j[ 2 x 153] @[2]Y - © Divide equation ③ by equation 9 1681023 K [2x103] [ 2x103J (1jY 7.6X1033 [2x103j« [ 2x10*)* [2]Y I = (4) p=0

Y = ] Order of reaction with respect to [HP J is zero. So, Rate Law can be written as a | Rate = k [ Mnog-I* [ 116204]' Initial rale = 2. 8109 [ Mnoj] = [H2604] - 1x10-3 1X10-3 M 2 x 10 9M5! = K Lix 10311 ] [ 1x103M] 2x109 Mst = kx 10 6 M² x 103 m 2X15" Ms = kx109 m3 K = 2 x 154 Ms! 10-9 m 3 K = 2x mais So, the correct option is 6 C Rote constant = 2x105 M²51)