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ahrayia [7]
3 years ago
9

Dinitrogen monoxide gas is collected at 19.0 °C in an evacuated flask with a measured volume of 30.0 L. When all the gas has bee

n collected, the pressure in the flask is measured to be 0.500 atm . Calculate the mass and number of moles of dinitrogen monoxide gas that were collected.
Chemistry
1 answer:
torisob [31]3 years ago
8 0

Answer:

The mass of dinitrogen monoxide gas that is collected is 27.6 grams

Explanation:

<u>Step 1:</u> Data given

Molar mass of N2O = 44.013 g/mole

Temperature = 19.0 °C = 292 Kelvin

volume of the gas = 30.0 L

Pressure of the gas = 0.500 atm

Gasconstant = 0.08206 L*atm/K*mol

<u>Step 2</u>: Calculate number of moles

via the ideal gas law:

P*V = n*R*T

n= (P*V)/(R*T)

n= (0.500 atm * 30.0 L)/(0.08206 L*atm/K*mol  *292 K)

n =0.626

<u>Step 3:</u> Calculate mass of dinitrogen monoxide

mass = number of moles * Molar mass

mass of N2O = 0.626 moles * 44.013 g/mole

mass of N2O = 27.6 grams

The mass of dinitrogen monoxide gas that is collected is 27.6 grams

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n an experiment, 39.26 mL of 0.1062 M NaOH solution was required to titrate 37.54 mL of \ v unknown acetic acid solution to a ph
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Answer:

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% (w/w): 0.666

Explanation:

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As 39.26mL ≡ 0.03926L of 0.1062M are required to titrate the solution of acetic acid. Moles are:

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<em></em>

As molar mass of acetic acid is 60g/mol, 4.169x10⁻³ moles weights:

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Now, assuming density of solution as 1.00g/mL, 37.54mL weights <em>37.54g</em>.

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3 years ago
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