Asked by Jason
Plese tell me if these are right.
A 15.0-mL sample of NaCl solution has a mass of 15.78g. After the NaCl is evaporated to dryness, the dry salt residue has a mass of 3.26g. Calculate the following concentrations for the NaCl solution.
a. %(m/m)= 3.26 x 100 / 15.78 = 20.7
b. %(m/v) = 3.26 x 100 / 15.0 = 21.7
c. molarity (m) Moles NaCl = 3.26 g / 58.4428 g/mol = 0.0558
M = 0.0558 mol / 0.0150 L = 3.72
How many grams of KI are in 25.0 mL of a 3.0%(m/v) KI solution. 3.0 = mass KI x 100 / 25.0
mass KI = 0.750 g
How many milliliters of a 2.5 M MgCl2 solution contain 17.5g Mg Cl2. Moles MgCl2 = 17.5 g / 95.211 g/mol= 0.184
V = 0.184 mol / 2.5 M = 0.0736 L => 73.9 mL
A 15.0-mL sample of NaCl solution has a mass of 15.78g. After the NaCl is evaporated to dryness, the dry salt residue has a mass of 3.26g. Calculate the following concentrations for the NaCl solution.
a. %(m/m)= 3.26 x 100 / 15.78 = 20.7
b. %(m/v) = 3.26 x 100 / 15.0 = 21.7
c. molarity (m) Moles NaCl = 3.26 g / 58.4428 g/mol = 0.0558
M = 0.0558 mol / 0.0150 L = 3.72
How many grams of KI are in 25.0 mL of a 3.0%(m/v) KI solution. 3.0 = mass KI x 100 / 25.0
mass KI = 0.750 g
How many milliliters of a 2.5 M MgCl2 solution contain 17.5g Mg Cl2. Moles MgCl2 = 17.5 g / 95.211 g/mol= 0.184
V = 0.184 mol / 2.5 M = 0.0736 L => 73.9 mL
Answers
Answered by
bobpursley
All correct.
Answered by
Kariann
Can you show me step by step how you did the last two problem questions?
Answered by
Anonymous
will 400 g of sucrose dissolve in a teapot that contains 200 g of water at 70 celcious? explain
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