Asked by Aima
A 0.940g sample of barium chloride dehydrate is heated and 0.800g of anhydrous residue remains after cooling.
A. How many moles of anhydrous barium chloride were present in the sample?
B. How many moles of water were present in the sample?
A. How many moles of anhydrous barium chloride were present in the sample?
B. How many moles of water were present in the sample?
Answers
Answered by
Roger the Mole
A.
(0.800g BaCl2) / (208.233g BaCl2/mol) =
0.00384 mol BaCl2
B.
(0.940 g - 0.800 g) /
(18.01532 g H2O/mol) = 0.00777 mol H2O
(0.800g BaCl2) / (208.233g BaCl2/mol) =
0.00384 mol BaCl2
B.
(0.940 g - 0.800 g) /
(18.01532 g H2O/mol) = 0.00777 mol H2O
Answered by
Missy
I don't answer the answer that's why I posted the question.
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