
Define reaction rate. Distinguish between the initial rate, average rate, and instantaneous rate of a

Interpretation: The definition of reaction rate is to be stated. A distinction between the terms initial rate, average rate and the instantaneous rate of a chemical reaction and the fastest rate among these is to be determined. An explanation regarding the usage of the initial rate as the rate by convention is to be stated.
Concept introduction: The change observed in the concentration of a reactant or a product per unit time is known as the rate of the particular reaction.
Answer to Problem 1RQ
Answer
The change observed in the concentration of a reactant or a product per unit time is known as the rate of the particular reaction.
Explanation of Solution
To determine: The definition of reaction rate.
The reaction rate or the rate of a reaction is defined as the change observed in the concentration of a reactant or a product per unit time.
For the reaction,
To determine: A distinction between the terms initial rate, average rate and the instantaneous rate of a chemical reaction and the fastest rate among the given rates.
Solution: The initial rate of a reaction is faster than the average rate and the instantaneous rate of a given chemical reaction.
The rate of a reaction observed at any instant of time is known as the ‘instantaneous rate of a reaction’. It can also be defined as thechange of concentration per unit time.
The rate of a reaction that is measured at comparatively longer intervals of time is known as the ‘average rate of the reaction’. The rate of a reaction keeps on changing throughout the reaction process. Hence, the rate of reaction generally observed is the average rate of the reaction during a specific time interval.
The instantaneous rate of a reaction that is measured initially or at
The initial rate of a reaction is faster than the average rate and the instantaneous rate of a given chemical reaction.
To determine: An explanation regarding the usage of the initial rate as the rate by convention.
Solution: The rate of a reaction at
The instantaneous rate of a reaction that is measured initially or at
Hence, the rate at this instant depends only upon the forward reaction. The reverse reaction does not occur as there is no formation of products. Therefore, the initial rate of a reaction is the rate used by convention.
The initial rate of a reaction is faster than the average rate and the instantaneous rate of a given chemical reaction.
The rate of a reaction at
Want to see more full solutions like this?
Chapter 11 Solutions
Chemistry: An Atoms First Approach
- true or false The equilibrium constant for this reaction is 0.20. N2O4(g) ⇔ 2NO2(g) Based on the above, the equilibrium constant for the following reaction is 0.4. 2N2O4(g) ⇔ 4NO2(g)arrow_forwardtrue or false Using the following equilibrium, if heat is added the equilibrium will shift toward the reactants. N2(g) + 3H2(g) ⇔ 2NH3(g) + heatarrow_forwardTrue or False Using the following equilibrium, if heat is added the equilibrium will shift toward the products. N2O4(g) + heat ⇔ 2NO2(g)arrow_forward
- true or false Using the following equilibrium, if solid carbon is added the equilibrium will shift toward the products. C(s) + CO2(g) ⇔ 2CO(g)arrow_forwardProvide the complete mechanism for the reaction below. You must include appropriate arrows,intermediates, and formal charges. Please also provide a reason to explain why the 1,4-adduct is preferred over the 1,3-adduct.arrow_forwardWhich of the following pairs are resonance structures of one another? I. III. || III IV + II. :0: n P !༠ IV. EN: Narrow_forward
- Predict the major organic product(s) and byproducts (either organic or inorganic) for thefollowing reactions.arrow_forwardA 8.25 g sample of aluminum at 55°C released 2500 J of heat. The specific heat of aluminum is 0.900 J/g°C. The density of aluminum is 2.70 g/mL. Calculate the final temperature of the aluminum sample in °C.arrow_forwardPredict the major organic product(s) and byproducts (either organic or inorganic) for thefollowing reactions.arrow_forward
- Predict the major organic product(s) and byproducts (either organic or inorganic) for thefollowing reaction.arrow_forwardplease helparrow_forwardExperiment 1 Data Table 1: Conservation of Mass - Initial Mass Data Table 1 Data Table 2 Data Table 3 Data Table 4 Panel 1 Photo 1 Data Table 5 Reaction Mass of test tube and 5.0% HC₂H₂O2 (g) # (A) (B) Mass of NaHCO, (g) Mass of balloon and NaHCO, (g) (C) 0.10 1 0829 14.38g 0.20 2 0.929 14.29g 0.35 1.00g 3 14.25g 0.50 1.14g 14.29 Experiment 1 Data Table 2: Moles of HC2H3O2 Reaction Volume of Mass of Moles of HC₂H₂O₂ 5.0% Vinegar (g) (ML) 5.0 0.25 0042 mol 2 5.0 0.25 0042 mol 3 5.0 0.25 0042 mol 5.0 0.25 0042 mol Experiment 1 Data Table 3: Moles of NaHCO3 Reaction Mass of NaHCO (g) 10g 20g 35g 50g Experiment 1 Data Table 4: Theoretical Yield of CO₂ Reaction # 1 2 3 Experiment 1 Total mass before reaction (g) (D=A+C) 15.29 15.21g 15.25g 15.349 Exercise 1 Data Table 1 Data Table 2 Data Table 3 Data Table 4 Panel 1 Photo 1 Data Table 5 Exercise 1- Data Table 1 Data Table 2 DataTable 3 Data Table 4 Panel 1 Photo 1 Data Table 5 Exercise 1- Moles of NaHCO 0012 mol 0025 mol 0044 mol 0062 mol…arrow_forward
- Chemistry: Matter and ChangeChemistryISBN:9780078746376Author:Dinah Zike, Laurel Dingrando, Nicholas Hainen, Cheryl WistromPublisher:Glencoe/McGraw-Hill School Pub CoChemistry by OpenStax (2015-05-04)ChemistryISBN:9781938168390Author:Klaus Theopold, Richard H Langley, Paul Flowers, William R. Robinson, Mark BlaserPublisher:OpenStaxChemistry for Today: General, Organic, and Bioche...ChemistryISBN:9781305960060Author:Spencer L. Seager, Michael R. Slabaugh, Maren S. HansenPublisher:Cengage Learning
- Introductory Chemistry: A FoundationChemistryISBN:9781337399425Author:Steven S. Zumdahl, Donald J. DeCostePublisher:Cengage LearningChemistryChemistryISBN:9781305957404Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCostePublisher:Cengage Learning



