Since SiO2 is in excess the Carbon is the limiting reagent. In order to use stoichiometric ratios you must first convert to moles.
The molar mass of Carbon is 12 g/mol
13.4 g C * ( 1mol / 12 g) = 1.12 mol C
Now, for every 3 Carbon you get 2 Carbon monoxide.
1.12 mol C * (2 CO / 3 C) = 0.74 mol CO
At Standard temperature and Pressure (STP); a mole of gas has a volume of 22.4 L. This is because everything in the Ideal Gas Law equation is held constant.
0.74 mol CO * ( 22.4 L/mol) = 16.7 L CO