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Find the empirical formula of a compound which contains 54.93% potassium, 38.73% boron and 6.34% hydrogen.
A. KBH
B. KB2H4
C. KB3H9
D. K2B5H9
Potassium (K) ≈ 39 a.m.u (g/mol)
Boron (B) ≈ 11 a.m.u (g/mol)
Hydrogen (H) ≈ 1 a.m.u (g/mol)
K: 54.93 % = 54.93 g
B: 38.73 % = 38.73 g
H: 6.34 % = 6.34 g
[tex]K: \dfrac{54.93\:\diagup\!\!\!\!\!g}{39\:\diagup\!\!\!\!\!g/mol} \approx 1.408\:mol[/tex]
[tex]B: \dfrac{38.73\:\diagup\!\!\!\!\!g}{11\:\diagup\!\!\!\!\!g/mol} \approx 3.521\:mol[/tex]
[tex]H: \dfrac{6.34\:\diagup\!\!\!\!\!g}{1\:\diagup\!\!\!\!\!g/mol} = 6.34\:mol[/tex]
[tex]K: \dfrac{1.408}{1.408}\to\:\:\boxed{K = 1}[/tex]
[tex]B: \dfrac{3.521}{1.408}\to\:\:\boxed{B \approx 2.5}[/tex]
[tex]H: \dfrac{6.34}{1.408}\to\:\:\boxed{H \approx 4.5}[/tex]
convert number of atomic radio into whole number
2 * (1 : 2.5 : 4.5)
= 2 : 5 : 9 ← whole number of atomic radio
K = 2
B = 5
H = 9
[tex]\boxed{\boxed{K_2B_5H_9}}\Longleftarrow(Empirical\:Formula)\:\:\:\:\:\:\bf\green{\checkmark}[/tex]
Answer:
D. K2B5H9
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