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Test: Stoichiometry and Stoichiometric Calculations (April 20) - NEET MCQ


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10 Questions MCQ Test - Test: Stoichiometry and Stoichiometric Calculations (April 20)

Test: Stoichiometry and Stoichiometric Calculations (April 20) for NEET 2024 is part of NEET preparation. The Test: Stoichiometry and Stoichiometric Calculations (April 20) questions and answers have been prepared according to the NEET exam syllabus.The Test: Stoichiometry and Stoichiometric Calculations (April 20) MCQs are made for NEET 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for Test: Stoichiometry and Stoichiometric Calculations (April 20) below.
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Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 1

In a reaction container, 100 g of hydrogen and 100 g of CI2 are mixed for the formation of HCl gas. What is the limiting reagent and how much HCl is formed in the reaction?

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 1


2 g of H2 reacts with 71 g of CI2
100 g of H2 will react with 71/2 x 100 = 3550g of CI2
Hence, CI2 is the limiting reagent.
71 g of CI2 produces 73 g of HCl
100g of CI2 will produce 73/71 x 100 = 102.8 g of HCl

Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 2

If 40 g of CaCO3 is treated with 40 g of HCl, which of the reactants will act as limiting reagent?

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 2


100 g of CaCO3 reacts with 73 g of HCl
40 g of CaCO3 will react with 73/100 x 40 = 29.2 g of HCl
Since CaCO3 is completely consumed and some amount (40 - 29.2 = 10.8g) of HCl remains unreacted and hence, CaCO3 is limiting reagent.

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Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 3

How much oxygen is required for complete combustion of 560 g of ethene?

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 3


28 g of C2H4 requires 96 g of O2
560 g of C2H4 requires 96/28 x 560
= 1920 g or 1.92 kg of O2

Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 4

How much mass of sodium acetate is required to make 250 mL of 0.575 molar aqueous solution?

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 4

Molar mass of sodium acetate (CH3COONa)
= 82.0245 g/mol
Mass of CH3COONa required to make 250 mL of 0.575 M solution 

Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 5

A solution is prepared by adding 5 g of a solute 'X' to 45 g of solvent 'Y'. What is the mass per cent of the solute 'X'?

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 5

Mass percent of X

Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 6

2.82 g of glucose is dissolved in 30 g of water. The mole fraction of glucose in the solution is

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 6

No. of moles of glucose = 2.82/180 = 0.01567
No. of moles of water = 30/18 = 1.667
Total no. of moles of solution = 0.01567 + 1.667 = 1.683
Mole fraction of glucose = 0.01567/1.683 = 0.0093 = 0.01

Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 7

The final molarity of a solution made by mixing 50 mL of 0.5 M HCl, 150 mL of 0.25 M HCl and water to make the volume 250 mL is

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 7

M1V= M2V= MV
0.5 x 50 + 0.25 x 150 = M x 250
M = (25 + 37.5)/250 = 0.25 M

Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 8

What is the concentration of copper sulphate (in mol L-1) if 80 g of it is dissolved in enough water to make a final volume of 3 L?

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 8

Molar mass of CUSO4 = 63.5 + 32 + 64 = 159.5
Moles of CUSO4 = 80/159.5 = O.50
Volume of solution = 3 L

= 0.167 mol L-1

Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 9

What volume of 5 M Na2SO4 must be added to 25 mL of 1 M BaCl2 to produce 10 g of BaSO4?

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 9

Na2SO4 + BaCI2 → BaSO4 + 2NaCl
No. of moles of BaSO4 = w/M = 10/233 = 0.0429
∴ No. of moles of Na2SO4 needed = M x V/1000
Or 0.0429 = 5 x V/1000
V = 8.58 mL

Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 10

What will be the molality of the solution made by dissolving 10 g of NaOH in 100 g of water?

Detailed Solution for Test: Stoichiometry and Stoichiometric Calculations (April 20) - Question 10

Molality =

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