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swat32
2 years ago
10

A 2.950×10−2 M solution of glycerol (C3H8O3) in water is at 20.0∘C. The sample was created by dissolving a sample of C3H8O3 in w

ater and then bringing the volume up to 1.000 L. It was determined that the volume of water needed to do this was 998.7 mL . The density of water at 20.0∘C is 0.9982 g/mL. Part A Calculate the molality of the glycerol solution.
Chemistry
1 answer:
11111nata11111 [884]2 years ago
7 0

Answer:

The molality of the glycerol solution is 2.960×10^-2 mol/kg

Explanation:

Number of moles of glycerol = Molarity × volume of solution = 2.950×10^-2 M × 1 L = 2.950×10^-2 moles

Mass of water = density × volume = 0.9982 g/mL × 998.7 mL = 996.90 g = 996.90/1000 = 0.9969 kg

Molality = number of moles of glycerol/mass of water in kg = 2.950×10^-2/0.9969 = 2.960×10^-2 mol/kg

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The molar mass of an imaginary molecule is is 93.89 g/mol. Determine its density at STP.
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Answer:

Density = 4.191 gm/L

Explanation:

Given:

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1 year ago
How many grams of K2CO3 would you need to put on the spill to neutralize the acid according to the following equation? 2HBr(aq)+
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Full Question:

A flask containing 420 Ml of 0.450 M HBr was accidentally knocked to the floor.?

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13.1 g K2CO3 required to neutralize spill

Explanation:

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3 0
2 years ago
Trichloromethane consists of 10.05% carbon. 0.83% hydrogen and 89.12% chlorine. if uts relative molecular mass is 119.5g . find
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Cl

(89.12/100)x119.5

=106.5x2=213

4 0
2 years ago
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