Photo AI

Which of the following gas samples has the same volume as 4.0 g of methane, CH4? (All volumes are measured at the same temperature and pressure.) A 1.0 g of helium B 1.0 g of hydrogen C 3.5 g of nitrogen D 35.5 g of chlorine - Scottish Highers Chemistry - Question 14 - 2019

Question icon

Question 14

Which-of-the-following-gas-samples-has-the-same-volume-as-4.0-g-of-methane,-CH4?-(All-volumes-are-measured-at-the-same-temperature-and-pressure.)--A-1.0-g-of-helium-B-1.0-g-of-hydrogen-C-3.5-g-of-nitrogen-D-35.5-g-of-chlorine-Scottish Highers Chemistry-Question 14-2019.png

Which of the following gas samples has the same volume as 4.0 g of methane, CH4? (All volumes are measured at the same temperature and pressure.) A 1.0 g of helium ... show full transcript

Worked Solution & Example Answer:Which of the following gas samples has the same volume as 4.0 g of methane, CH4? (All volumes are measured at the same temperature and pressure.) A 1.0 g of helium B 1.0 g of hydrogen C 3.5 g of nitrogen D 35.5 g of chlorine - Scottish Highers Chemistry - Question 14 - 2019

Step 1

Determine the molar mass of methane (CH4)

96%

114 rated

Answer

The molar mass of methane (CH4) can be calculated as follows:

  • Carbon (C): 12.01 g/mol
  • Hydrogen (H): 1.008 g/mol × 4 = 4.032 g/mol

Total molar mass = 12.01 + 4.032 = 16.042 g/mol.

Step 2

Calculate the number of moles of methane in 4.0 g

99%

104 rated

Answer

To find the number of moles ( ( n )) of methane, use the formula: [ n = \frac{mass}{molar\ mass} = \frac{4.0 g}{16.042 g/mol} \approx 0.2496 mol ]

Step 3

Use the Ideal Gas Law to find the volume

96%

101 rated

Answer

At standard temperature and pressure (STP), one mole of gas occupies 22.4 L. Thus, the volume occupied by 0.2496 moles of methane is:

[ Volume = n \times 22.4 L/mol \approx 0.2496 mol \times 22.4 L/mol \approx 5.596 L ]

Step 4

Determine the mass of each gas to compare

98%

120 rated

Answer

Using the molar masses of each gas:

  • Helium (He): 4.00 g/mol
  • Hydrogen (H2): 2.02 g/mol
  • Nitrogen (N2): 28.02 g/mol
  • Chlorine (Cl2): 70.90 g/mol

Now calculate how many moles correspond to the offered masses:

  • For 1.0 g of helium: [ n_{He} = \frac{1.0 g}{4.00 g/mol} = 0.25 mol;\ Volume = 0.25 \times 22.4 L/mol = 5.6 L]
  • For 1.0 g of hydrogen: [ n_{H2} = \frac{1.0 g}{2.02 g/mol} \approx 0.495 mol;\ Volume = 0.495 \times 22.4 L/mol \approx 11.08 L]
  • For 3.5 g of nitrogen: [ n_{N2} = \frac{3.5 g}{28.02 g/mol} \approx 0.125 mol;\ Volume = 0.125 \times 22.4 L/mol \approx 2.8 L]
  • For 35.5 g of chlorine: [ n_{Cl2} = \frac{35.5 g}{70.90 g/mol} \approx 0.501 mol;\ Volume = 0.501 \times 22.4 L/mol \approx 11.22 L]

Step 5

Identify the gas sample with equivalent volume

97%

117 rated

Answer

The only gas sample that has a volume close to 5.6 L is:

  • A: 1.0 g of helium.

Thus, the answer is A.

Join the Scottish Highers students using SimpleStudy...

97% of Students

Report Improved Results

98% of Students

Recommend to friends

100,000+

Students Supported

1 Million+

Questions answered

;