What pressure (in atm) will 0.44 moles of CO_2 exert in a 2.6 L container at 25°C?

1 Answer
anor277
Oct 30, 2016

P=(nRT)/V=??*atm

Explanation:

P=(0.44*cancel(mol)xx0.0821*cancelL*atm*cancel(K^-1)cancel(mol^-1)xx298*cancelK)/(2.6*cancelL)

= ?? atm.

The "Gas constant", R, most generally used by chemists is 0.0821*L*atm*K^-1*mol^-1. Sometimes, we use dm^3, i.e. 1*dm^3=(1xx10^-1*m)^3=10^-3*m^3, i.e. 1L=1*dm^3=10^-3m^3.

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