Answer:
       Empirical Formula  =  NH₄NO₃ (Ammonium Nitrate)
Solution:
Step 1: Calculate Moles of each Element;
           Moles of N  =  %N ÷ At.Mass of N
           Moles of N  = 35.0 ÷ 14
           Moles of N  =  2.5 mol
           Moles of O  =  %O ÷ At.Mass of O
           Moles of O  = 59.96 ÷ 16
           Moles of O  =  3.7475 mol
           Moles of H  =  [100% - (%N + %O)] ÷ At.Mass of H
           Moles of H  = [100% - (35.0 + 59.96)] ÷ 1.008
           Moles of H  = [100% - 94.96] ÷ 1.008
           Moles of H  = 5.04 ÷ 1.008
           Moles of H  =  5 mol
Step 2: Find out mole ratio and simplify it;
         N                     H                   O
        2.5                    5                 3.7475
      2.5/2.5                 5/2.5              3.7475/2.5
         1                     2                   1.5
Multiply Mole Ratio by 2,
         2                     4                   3
Result:
     Empirical Formula  =  N₂H₄O₃
Or,
     Empirical Formula  =  NH₄NO₃
This empirical formula is also a Molecular Formula for Ammonium Nitrate a well known Fertilizer and often misused in the formation of Explosives.
