Question #9bb2b

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Doc048
Jun 8, 2017

#C_4H_10#

Explanation:

%C = 82.6% => 82.6g => (86.2g/12g/mol) => 6.88 mole
%H = 17.4% => 17.4g => (17.4g/1g/mol) => 17.4 mole

C:H => 6.88:17.4 => Reduces to 1:2.5 => Emp Ratio => 2:5
Emp Formula => #C_2H_5#
Emp Formula Wt = 2C + 5H = [2(12) + 5(1)] g/mole = 29 g/mole

2.9 gram sample of hydrocarbon => 1.12 #dm^3# = 1.12 Liters at STP
moles of hydrocarbon sample = (1.12L/22.4L/mol) = 0.05 mole
mole wt = (2.9 g/ 0.05 mole) = 58 g/mole

(Emp. Wt) N = Mole Wt. => (29)N = 58 => N = 2

#(C_2H_5)_N#; N = 2 => Molecular Formula => #C_4H_10#

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