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Ch.14 - Chemical Kinetics
McMurry - Chemistry 8th Edition
McMurry8th EditionChemistryISBN: 9781292336145당신이 사용하는 게 아니라요?교과서 변경
14장, 문제 95

A certain first-order reaction has a rate constant of 1.0 * 10-3 s-1 at 25 °C. (b) What is the Ea (in kJ/mol) if the same temperature change causes the rate to triple?

검증된 단계별 안내
1
Identify the Arrhenius equation: k = A * e^(-Ea/(RT)), where k is the rate constant, A is the pre-exponential factor, Ea is the activation energy, R is the gas constant (8.314 J/mol·K), and T is the temperature in Kelvin.
Recognize that the problem involves a change in the rate constant due to a change in temperature, which can be analyzed using the Arrhenius equation in its logarithmic form: ln(k2/k1) = -Ea/R * (1/T2 - 1/T1).
Since the rate triples, set k2 = 3 * k1. Use the given rate constant k1 = 1.0 * 10^-3 s^-1 and solve for Ea.
Assume the temperature change is negligible for simplification, so T1 = T2 = 25 °C = 298 K. Substitute these values into the equation: ln(3) = -Ea/R * (1/298 - 1/298).
Solve for Ea by rearranging the equation: Ea = -R * ln(3) / (1/298 - 1/298). Note that the temperature difference is zero, so this step is conceptual to understand the relationship.

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주요 개념

질문에 올바르게 답하기 위해 반드시 이해해야 하는 핵심 개념들은 다음과 같습니다.

First-Order Reactions

First-order reactions are chemical reactions where the rate is directly proportional to the concentration of one reactant. The rate law for a first-order reaction can be expressed as rate = k[A], where k is the rate constant and [A] is the concentration of the reactant. Understanding this concept is crucial for analyzing how changes in concentration affect the reaction rate.
추천 영상:
가이드 코스
02:29
First-Order Reactions

Arrhenius Equation

The Arrhenius equation relates the rate constant of a reaction to the temperature and activation energy (Ea). It is expressed as k = A * e^(-Ea/RT), where A is the pre-exponential factor, R is the gas constant, and T is the temperature in Kelvin. This equation is essential for determining how temperature changes influence reaction rates and for calculating activation energy.
추천 영상:
가이드 코스
01:20
Arrhenius Equation

Effect of Temperature on Reaction Rate

Temperature significantly affects the rate of chemical reactions, typically increasing the rate as temperature rises. This is due to the increased kinetic energy of molecules, leading to more frequent and effective collisions. In this question, understanding how a temperature change can cause the rate to triple is key to calculating the activation energy using the Arrhenius equation.
추천 영상:
가이드 코스
02:03
Average Rate of Reaction
관련 실천
교과서 질문
If the rate of a reaction increases by a factor of 2.5 when the temperature is raised from 20 °C to 30 °C, what is the value of the activation energy in kJ/mol? By what factor does the rate of this reaction increase when the temperature is raised from 120 °C to 130 °C?
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교과서 질문
What is the relationship between the coefficients in a balanced chemical equation for an overall reaction and the exponents in the rate law?
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교과서 질문
You wish to determine the activation energy for the following first-order reaction: AS B + C (b) How would you use these data to determine the activation energy?
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교과서 질문

Consider three reactions with different values of Ea and ΔE:

Reaction 1. Ea = 20 kJ>mol; ΔE = -60 kJ/mol

Reaction 2. Ea = 10 kJ>mol; ΔE = -20 kJ/mol

Reaction 3. Ea = 40 kJ>mol; ΔE = +15 kJ/mol

(c) Which reaction is the most endothermic, and which is the most exothermic?

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교과서 질문

Consider three reactions with different values of Ea and ΔE:

Reaction 1. Ea = 20 kJ>mol; ΔE = -60 kJ/mol

Reaction 2. Ea = 10 kJ>mol; ΔE = -20 kJ/mol

Reaction 3. Ea = 40 kJ>mol; ΔE = +15 kJ/mol

(b) Assuming that all three reactions are carried out at the same temperature and that all three have the same frequency factor A, which reaction is the fastest and which is the slowest?

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교과서 질문
The values of Ea = 248 kJ>mol and ΔE = 41 kJ>mol have been measured for the reaction H21g2 + CO21g2S H2O1g2 + CO1g2 (b) Considering the geometry of the reactants and products, suggest a plausible structure for the transition state.
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