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What is the volume of 300. g of mercury vapor at 822K and 0.900 atm?

User Leggo
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1 Answer

11 votes
11 votes

Answer:

112.2L

Step-by-step explanation:

Volume (V) = 300g

Temperature (T) = 822K

Pressure (P) = 0.9atm

using the ideal gas equation;


PV = nRT\\\\ V = (nRT)/(P)

Molar gas constant (R) =
0.0821L.atm/mol.K

Mole (n) =
(Mass (m))/(Molar mass (M)) Molar mass of Mercury = 200.59g/mol


n = (300g)/(200.59 g/mol) \\

= 1.496mol

Now, the volume can be calculated;

V =
(1.496mol* 0.0821L.atm/mol.K*822K)/(0.9atm)

∴Volume of mercury =
112.2L

User Stefan Stoychev
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2.4k points