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Determine the rate of a reaction that follows the rate law:rate = k[A]m[B]n, where:k = 0.2[A] = 3 M[B] = 3 Mm = 1n = 2A.27 (mol/L)/sB.1.2 (mol/L)/sC.5.4 (mol/L)/sD.1.8 (mol/L)/sSUBMITarrow_backPREVIOUS

Question

Determine the rate of a reaction that follows the rate law:rate = k[A]m[B]n, where:k = 0.2[A] = 3 M[B] = 3 Mm = 1n = 2A.27 (mol/L)/sB.1.2 (mol/L)/sC.5.4 (mol/L)/sD.1.8 (mol/L)/sSUBMITarrow_backPREVIOUS

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Solution

To determine the rate of the reaction, we need to substitute the given values into the rate law equation.

The rate law is given as: rate = k[A]^m[B]^n

Substituting the given values into the equation:

rate = 0.2 * (3)^1 * (3)^2

Solving the equation:

rate = 0.2 * 3 * 9

rate = 5.4 (mol/L)/s

So, the answer is C.5.4 (mol/L)/s.

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What is the rate constant of a reaction if rate = 1.5 (mol/L)/s, [A] is 1 M, [B] is 3 M, m = 2, and n = 1?A.0.17B.4.5C.13.5D.0.5SUBMITarrow_backPREVIOUS

Calculate the overall order of the reaction whose rate law expression was predicted as :Rate =k[NO]3/2 [O ]1/2

The rate of a certain reaction is given by the following rate law:rate=kN23O3Use this information to answer the questions below.

A reaction has the rate law:Rate = k[NO] 2 [H 2 ].If [NO] and [H 2 ] are both increased by a factor of 3, what will be the observed changein the rate?

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