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 Multiple Choice QuestionsShort Answer Type

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81. Which of the reactions slow or fast, will have higher activation energy?
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82. What information can we had from the statement that the energy of activation of a reaction is zero?
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83. Define collision frequency factor.
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84. For the reaction H2 + I2 → 2HI, What is the molecularity of the reaction?
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85. Define the term ‘order of reaction’ for chemical reactions. 
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86. The decomposition of dimethyl ether leads to the formation of CH4, H2 and CO and the rate is given by
Rate = k[CH3OCH3]3/2
The rate of reaction is followed by increase in pressure in a closed vessel, so the rate can also be expressed in terms of the partial pressure of dimethyl ether, i.e.,
Rate = k pCH3O CH3/2.
If the pressure is measured in bar and time in minutes, then what are the units of rate and rate constants? 


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87. List the factors on which the rate of a chemical reaction depends.
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 Multiple Choice QuestionsLong Answer Type

88. From the rate expression for the following reactions, determine their order of reaction and the dimensions of the rate constants
(i) 3NO(g) → N2O (g) Rate = k[NO]2
(ii) H2O2 (aq) + 3I (aq) + 2H+ → 2H2O (l) + I-Rate = k[H2O2][I-]
(iii) CH3CHO (g) → CH4 (g) + CO(g) Rate = k [CH3CHO]3/2
(iv) C2H5Cl (g) → C2H4 (g) + HCl (g) Rate = k [C2H5Cl]

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89. A reaction is second order with respect to a reactant. How is the rate of rection affected if the concentration of the reactant is
(i) Doubled
(ii) Reduced to 1/2?
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90. A reaction is first order in A and second order in B
(i) Write differential rate equation.
(ii) How is the rate affected when the concentration of B three times?
(iii) How is the rate affected when the concentrations of both A and B are doubled?
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