Based on the graph below, the average rate of reaction will be: 

1.  \(\frac{[R_{2}]-[R_{1}]}{t_{2}-t_{1}}\)
2.  \(-(\frac{[R_{2}]-[R_{1}]}{t_{2}-t_{1}})\)
3.  \(\frac{[R_{2}]}{t_{2}}\)
4.  \(-(\frac{[R_{1}]-[R_{2}]}{t_{2}-t_{1}})\)

Subtopic:  Definition, Rate Constant, Rate Law |
 71%
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Consider the following graph:
      

The instantaneous rate of reaction at t = 600 sec will be:

1. - 4.75 ×10-4 mol L-1s-1
2. 5.75×10-5 mol L-1s-1
3.  6.75×10-6 mol L-1s-1
4. -6.75×10-6 mol L-1s-1

Subtopic:  Definition, Rate Constant, Rate Law |
 54%
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The slope of the given below graph is -

 1. k2.303

2. -k2.303

3. -2.303k

4. 2.303k

Subtopic:  First Order Reaction Kinetics |
 58%
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The nature of the reaction represented in the following graph is:

1. Endothermic reaction
2. Exothermic reaction
3. Both endothermic and exothermic reactions are represented by the same graph.
4. None of the above
Subtopic:  Arrhenius Equation |
 83%
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The graph between lnK and 1/T is given below:

The value of activation energy would be:

1. \(207.8\ \mathrm{KJ} / \mathrm{mol} \) 2. \(- 207.8\ \mathrm{KJ} / \mathrm{mol} \)
3. \(210.8\ \mathrm{KJ} / \mathrm{mol} \) 4. \(-210.8\ \mathrm{KJ} / \mathrm{mol} \)
Subtopic:  Arrhenius Equation |
 69%
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The correct statement about X in the below mentioned graph:

1. X represents activation energy without catalyst.
2. X represents activation energy with catalyst.
3. X represents the enthalpy of the reaction without a catalyst.
4. X represents the enthalpy of the reaction with a catalyst.
Subtopic:  Arrhenius Equation |
 86%
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For a general reaction A → B, the plot of concentration of A vs time is given below:

The unit of the rate constant would be:

1. \(\mathrm{mol}^{-1} \mathrm{~L}^{-1} \mathrm{~s}^{-1} \) 2. \(s^{-1} \)
3. \(\mathrm{mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} \) 4. None of the above

Subtopic:  First Order Reaction Kinetics |
 65%
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A first-order reaction's 10 percent completion time at 298 K is the same as its 25 percent completion time at 308 K. The value of Ea will be:

1. 76.64 J mol-1

2. 66.64 kJ mol-1

3. 76.64 kJ mol-1

4. 70.34 kJ mol-1

Subtopic:  Arrhenius Equation |
 52%
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During a nuclear explosion, one of the products is 90Sr with a half-life of 28.1 years. If 1µg of 90Sr was absorbed in the bones of a newly born baby instead of calcium, the amount of 90Sr that will remain after 10 years in the now grown up child would be -

(Given ,antilog(0.108)=1.28)

1. 0.227 µg 

2. 0.781 µg 

3. 7.81 µg 

4. 2.27 µg 

Subtopic:  First Order Reaction Kinetics |
 67%
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The rate constant of a radioactive substance is 4 years-1. The value of half-life will be : 

1. 0.05 years

2. 0.17 years

3. 0.26 years-1

4. 1.6 years

Subtopic:  First Order Reaction Kinetics |
 86%
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