2.30g of an unknown metallic oxide is placed in a 3.00 L flask. The flask is filled with carbon dioxide to a pressure 740. mm Hg at 20. oC. After the reaction, the pressure is then 390. torr at 20.oC. According to the reaction XO + CO2 ----> XCO3 , identify X if it is a group 2A metal (alkaline earth).
*****the partial pressure of CO2 that was consumed is
740mmHg-390mmHg= 350mmHg of CO2 used up
convert that to atm 350mmHg (1 atm/760 mmHg) =0.460atm
find the moles
PV=nRT (0.460atm)( 3.00L)=n 0.0821(293K) n=0.0574mol CO2 consumed
since it is a 1:1 mol ratio
0.0574 moles of unknown oxide
2.30g/0.0574mol= molar mass =40g/mol
MgO |