Question

Calculate the molarity of each of the following

solutions.
Part A
4.35 mol of LiCl in 3.60 L solution

Part B
29.43g of C6H12O6 in 1.37 L solution

Part C
34.5mg of NaCl in 119.1 mL of solution

Answer 1

a. 1.21M

b. 0.119M

c. 0.00496M

Step-by-step explanation:

Molarity, M, is an unit of concentration defined as the ratio between moles of solute and liters of solution:

a. 4.35 mol LiCl / 3.60L = 1.21M

b. 29.43gC6H12O6 * (1mol / 180.16g) = 0.1634moles / 1.37L = 0.119M

Molar mass C6H12O6: 180.16g/mol

c. 34.5mg NaCl = 0.0345g * (1mol / 58.44g) = 5.9x10⁻⁴moles / 0.1191L = 0.00496M