Chapter 3: Q9P (page 131)
Calculate the molar mass of each of the following:
(a) (b) (c) (d)
Short Answer
The molar massof each of the following:
a)
b)
c)
d)
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Chapter 3: Q9P (page 131)
Calculate the molar mass of each of the following:
(a) (b) (c) (d)
The molar massof each of the following:
a)
b)
c)
d)
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Calculate each of the following quantities:
(a) Grams of solute in 185.8 mL of 0.267 M calcium acetate
(b) Molarity of 500. mL of solution containing 21.1 g of potassium iodide
(c) Moles of solute in 145.6 L of 0.850 M sodium cyanide
3.16 Calculate each of the following quantities:
(a) Mass in grams of 8.35 mol of copper(I) carbonate
(b) Mass in grams of molecules of dinitrogen pentaoxide
(c) Number of moles and formula units in 78.9 g of sodium perchlorate
(d) Number of sodium ions, perchlorate ions, Cl atoms, and O atoms in the mass of the compound in part (c).
Box A represents one unit volume of solution A. Which box – B, C or D represents one unit volume after adding enough solvent to solution A to (a) triple its volume; (b) double its volume; (c)quadruple its volume?

Calculate each of the following:
a). Mass % of H in ammonium bicarbonate
b). Mass % of O in sodium dihydrogen phosphate heptahydrate
Alum [KAI(SO4)2 .xH2O]is used in food preparation, dye fixation, and water purification. To prepare alum, aluminum is reacted with potassium hydroxide and the product with sulfuric acid. Upon cooling, alum crystallizes from the solution. (a) A 0.5404-g sample of alum is heated to drive off the waters of hydration, and the resulting KAI(SO4)2weighs 0.2941 g. Determine the value of and the complete formula of alum. (b) When 0.7500 g of aluminum is used, 8.500 g of alum forms. What is the percent yield?
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