(a)
Interpretation:
The molarity of 11-cis-retinal after
Concept introduction:
Integrated rate law for a first order reaction:
A first order reaction is defined as the reaction whose rate depends only on the concentration of a single reactant raised to the first power.
Integrated rate law for a first order reaction is given below
(b)
Interpretation:
The time required to react
Concept introduction:
Integrated rate law for a first order reaction:
A first order reaction is defined as the reaction whose rate depends only on the concentration of a single reactant raised to the first power.
Integrated rate law for a first order reaction is given below
(c)
Interpretation:
The time required to form
Concept introduction:
Integrated rate law for a first order reaction:
A first order reaction is defined as the reaction whose rate depends only on the concentration of a single reactant raised to the first power.
Integrated rate law for a first order reaction is given below
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General Chemistry: Atoms First
- The rate constant, k, at 25 C is 0.27/h for the reaction Pt(NH3)2Cl2(aq) + H2O() [Pt(NH3)2(H2O)Cl]+(aq) + Cl(aq) and the rate equation is Reaction rate = k[Pt(NH3)2C12] Calculate the rate of reaction when the concentration of Pt(NH3)2Cl2 is 0.020 M.arrow_forwardBe sure to answer all parts. Acetone is one of the most important solvents in organic chemistry. It is used to dissolve everything from fats and waxes to airplane glue and nail polish. At high temperatures, it decomposes in a first- order process to methane and ketene (CH,=C=0). At 600°C, the rate constant is 8.7 x 103 s1. (a) What is the half-life of the reaction? Give your answer in scientific notation. x 10 (select) A (b) How long does it take for 42% of a sample of acetone to decompose? (c) How long does it take for 82% of a sample of acetone to decompose? Give your answer in scientific notation. x 10 (select) O Sarrow_forward(iv) The activation energy, Ea, and pre-exponential factor, A, for the decomposition of N2O5: N2O5→ 2 NO2 + ½ O2 are: E = 102.2 kJ mol-1 and A = 2.81 x 1013 s-1. (a) Using these data calculate the rate constant of the reaction at 300 K. (b) Assuming the reaction is first order calculate the rate of the reaction, at 300 K, when the concentration of N2O5 is 0.015 mol L-1.arrow_forward
- (a) Select all of the correct statements about reaction rates from the choices below. The lower the rate of a reaction the longer it takes to reach completion.Reactions involving very unstable combinations of chemicals have large rate constants.Concentrations of homogeneous catalysts have no effect on reaction rates.Reaction rate constants are independent of temperature.The slowest step in a reaction is called the rate-determining step.A balanced chemical reaction is necessary to relate the rate of reaction to the concentration of a reactant.Slow reactions can be speeded up by raising the temperature.arrow_forward1.) The anticancer drug cis-platin hydrolyzes in water with a rate constant of 1.5 ×10−3 min−1 at pH 7.0 and 25°C. Calculate the half-life for the hydrolysis reaction under these conditions. If a freshly prepared solution of cis-platin has a concentration of 0.053 M, what will be the concentration of cis-platin after 5 halflives? after 10 half-lives? 2.) Ethyl chloride decomposes to ethylene and HCl in a first-order reaction that has a rate constant of 1.6 × 10−6 s−1 at 650°C. What is the half-life for the reaction under these conditions? If a flask that originally contains 0.077 Methyl chloride is heated at 650°C, what is the concentration of ethyl chloride after 4 half-lives?arrow_forwardThe activation energy for the isomerization reaction CH3NC(g) → CH3CN(g) is 161 kJ mol−¹, and the reaction rate constant at 600 K is 0.41 s¯¹. (a) What is the value of the pre-exponential factor A for this reaction? (b) What is the value of the rate constant of the reaction at 1000 K?arrow_forward
- The light-stimulated conversion of 11-cis-retinal to 11-trans-retinal is central to the vision process in humans. This reaction also occurs (more slowly) in the absence of light. At 80.0 ∘C∘C in heptane solution, the reaction is first order with a rate constant of 1.02×10−5/s. What is the molarity of 11-cis-retinal after 6.00 h if its initial concentration is 3.7×10−3 M ? How many minutes does it take for 25 %% of the 11-cis-retinal to react? How many hours does it take for the concentration of 11-trans-retinal to reach 3.15×10−3 M? (Note: 11-cis-retinal + 11-trans-retinal = total amount of retinal in eye)arrow_forwardConsider the following reaction: (a) The rate law for this reaction is first order in NO₂(g) and first order in O3(g). What is the rate law for this reaction? O Rate = k [NO₂(g)] [03(9)] Rate = k [NO₂(g)]² [03(9)] O Rate = k [NO₂(g)] [03(9)]² O Rate = k [NO₂(g)]² [03(g)]² Rate = k [NO₂(g)] [03(g)]³ Rate = k [NO₂(g)]4 [03(9)] (b) If the rate constant for this reaction at a certain temperature is 73200, what is the reaction rate when [NO₂(g)] = 0.973 M and [O3(9)] = 1.42 M? Rate = 2 NO₂(g) + 03(g) → N₂05(9) + O₂(g) M/s. Rate = (c) What is the reaction rate when the concentration of NO₂(g) is doubled, to 1.95 M while the concentration of O3(g) is 1.42 M? M/sarrow_forwardThe decomposition of XY is second order in XY and has a rate constant of 7.41 × 10−3 L·mol−1·s−1 at a certain temperature, the half-life for this reaction at an initial concentration of 0.101 mol·L−1 1336. A) If the initial concentration of XY is 0.225 mol·L−1, how long will it take for the concentration to decrease to 6.95 × 10−2 mol·L−1 ?, B) If the initial concentration of XY is 0.080 mol·L−1, what is the concentration of XY after 75 s ?arrow_forward
- The reaction A + B → P is found to be first order in both A and B. The reaction was carried out in a solution that was initially 0.080 mol dm−3 in A and 0.060 mol dm−3 in B. After 1.0 h the concentration of B had fallen to 0.030 mol dm−3. (i) Calculate the rate constant. (ii) What are the half-lives of the reactants?arrow_forward(b) The half-life for the decomposition of dinitrogen pentoxide at 70 °C is 101.6 s. At the beginning of the decomposition reaction, 0.025 moles of dinitrogen pentoxide were dissolved in 2 x10³ cm³ of water. Assuming that the reaction follows the first order reaction, predict the duration (in minutes) for the dinitrogen pentoxide to decompose to 0.01 mol.arrow_forward(a) Explain the following terms :(i) Order of a reaction(ii) Molecularity of a reaction(b) The rate of a reaction increases four times when the temperature changes from 300 K to 320 K. Calculate the energy of activation of the reaction, assuming that it does not change with temperature. (R = 8.314 J K-1 mol-1)arrow_forward
- Chemistry & Chemical ReactivityChemistryISBN:9781337399074Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage LearningChemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage Learning