1.20 g of a gas compound containing C, H and S in 2.10 L. flask has the pressure of 108  mmHg at the temperature of 25oC .   1.00 g of the compound is burned in pure oxygen produces 2.24 g CO2 and 0.551 g H2O.  0.480 g of the compound produces 0.313 g SO2.  Calculate the molecular formula of the compound. C = 12.01 g/mole , H = 1.00 g/mole, S = 32.07 g/mole,  O = 16.00 g/mole  a.CH3S b.CHS c.C2H3S2 d.C5H6S

Chemistry: An Atoms First Approach
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Author:Steven S. Zumdahl, Susan A. Zumdahl
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Chapter8: Gases
Section: Chapter Questions
Problem 156CP
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27.   1.20 g of a gas compound containing C, H and S in 2.10 L. flask has the pressure of 108  mmHg at the temperature of 25oC .   1.00 g of the compound is burned in pure oxygen produces 2.24 g CO2 and 0.551 g H2O.  0.480 g of the compound produces 0.313 g SO2.  Calculate the molecular formula of the compound.

C = 12.01 g/mole , H = 1.00 g/mole, S = 32.07 g/mole,  O = 16.00 g/mole 


a.CH3S
b.CHS
c.C2H3S2
d.C5H6S
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