Question #48160

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Question #48160

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Answer 1 · 2016-04-28T01:52:23

${1.25 g L}^{- 1}$ $"1.25 g L"^(-1)$

Explanation:

The idea here is that you need to use the ideal gas law equation and the molar mass of nitrogen gas, $N_{2}$ $"N"_2$ , to find a relationship between the mass of a sample of nitrogen gas and the volume it occupies at STP.

Now, STP conditions will most likely be given to you as a pressure of $1 atm$ $"1 atm"$ and a temperature of $0^{\circ} C$ $0^@"C"$ , or $273.15 K$ $"273.15 K"$ .

The ideal gas law equation looks like this

$color(blue)(|bar(ul(color(white)(a/a)PV = nRTcolor(white)(a/a)|)))" "$ , where

$P$ - the pressure of the gas
$V$ - the volume it occupies
$n$ - the number of moles of gas
$R$ - the universal gas constant, usually given as $0.0821("atm" * "L")/("mol" * "K")$
$T$ - the absolute temperature of the gas

As you know, a compound's molar mass tells you the mass of one mole of that substance. IN your case, nitrogen gas has a molar mass of

$M_M = "28.0134 g mol"^(-1)$

This means that every mole of nitrogen gas has a mass of $"28.0134 g"$ .

You can thus replace the number of moleso f nitrogen gas, $n$ , in the ideal gas law equation by the ratio between a mass $m$ and the molar mass of the gas

$n = m/M_M$

Plug this into the ideal gas law equation to get

$PV = m/M_M * RT$

Rearrange to get

$PV *M_M = m * RT$

This will be equivalent to

$P * M_M = m/V * RT$

But since density, $rho$ , is defined as mass per unit of volume, you can say that you have

$m/V = (P * M_M)/(RT)$

and therefore

$color(purple)(|bar(ul(color(white)(a/a)color(black)(rho = (P * M_M)/(RT))color(white)(a/a)|)))$

Now all you have to do is use the STP values for pressure and temperature and the molar mass of nitrogen gas to get

$rho = (1 color(red)(cancel(color(black)("atm"))) * "28.0134 g" color(red)(cancel(color(black)("mol"^(-1)))))/(0.0821(color(red)(cancel(color(black)("atm"))) * "L")/(color(red)(cancel(color(black)("mol"))) * color(red)(cancel(color(black)("K")))) * 273,15color(red)(cancel(color(black)("K")))) = color(green)(|bar(ul(color(white)(a/a)"1.25 g L"^(-1)color(white)(a/a)|)))$

$color(white)(a)$
ALTERNATIVE APPROACH

As you know, one mole of any ideal gas kept at $"1 atm"$ and $0^@"C"$ occupies $"22.4 L"$ -- this is known as the molar volume of a gas at STP.

Moreover, you know that one mole of nitrogen gas has a mass of $"28.0134 g"$ . Since density tells you mass per unit of volume, all you have to do now is determine the mass of one liter of nitrogen gas at STP

$1 color(red)(cancel(color(black)("L N"_2))) * overbrace((1 color(red)(cancel(color(black)("mole N"_2))))/(22.4color(red)(cancel(color(black)("L N"_2)))))^(color(purple)("molar volume of a gas at STP")) * overbrace("28.0134 g"/(1color(red)(cancel(color(black)("mole N"_2)))))^(color(blue)("molar mass of N"_2)) = "1.25 g"$

Since this is how many grams you get per liter of nitrogen gas at STP, it follows that its density will be

$rho = color(green)(|bar(ul(color(white)(a/a)"1.25 g L"^(-1)color(white)(a/a)|)))$

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Question #48160

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