Secondary IV • 3yr.
Good evening,
I have a problem with the following question:
"In increasing order of concentration, order the following solutions:
Sol. A: 0.1 g / L of CaCO3 in water
Sol. B: 5% m / V solution of ethanol in water
Sol. C: solution of 3 mol of CO2 in 60 mol of air
Sol. D: solution of 560 ppm "
Thank you for your help
Explanation from Alloprof
This Explanation was submitted by a member of the Alloprof team.
Thank you for your question!
To answer it, we must express all of the given concentrations the same way. In this case, switching everything to ppm is probably the easiest since the concentration of solution D is already expressed in ppm, and that solution C is easily transformable into ppm.
First, let's start by converting the concentration of solution A to ppm. We know that there is 0.1 g of CaCO3 per 1000 mL of water. Since, under normal conditions, 1 mL of water ≈ 1 g (Note: this approximation is only valid for water!), We can consider that there is 0.1 g of CaCO3 per 1000 g of water. Thus, we can find the concentration of solution A in ppm:
C = msolute / msolution • 1000000
C = 0.1g / 1000g • 1000000 = 100ppm
Then, we can find the concentration of solution B in ppm. We know that there is 5% ethanol in terms of mass/volume in an aqueous solution. Using the reasonable approximation of 1 mL of water ≈ 1 g, all it remains to do is to convert the concentration in its decimal form and multiply it by 1 million to obtain the concentration in ppm:
é
C = msolute / msolution • 1000000
C = (5% / 100) / 1000g • 1000000 = 50ppm
Finally, we can find the concentration of solution C in ppm. We know that there is 3 mol of carbon dioxide (CO2) for 60 mol of air. (I believe here that air means "dinitrogen" (N2). I remember seeing this number somewhere, and otherwise, the question wouldn't make sense!).
Knowing that the molar mass of carbon dioxide is 44.01 g/mol, we conclude that
3molCO2 = 3 • 44.01g/mol = 132.03g
Then, knowing that the molar mass of dinitrogen is 28.0134 g/mol, we conclude that
60molN2 = 60 • 28,0134g/mol = 1680,804g
To find the total mass of the solution (we must include the mass of the solute because it is not negligible compared to the one of the solution), we add the respective masses of carbon and nitrogen:
msolution = 132.03g + 1680.804g = 1812.834g
Then, it only remains to apply the ppm formula to find the concentration of the solution:
é
C = msolute / msolution • 1000000
C = (132.03g / 1812 , 834g) • 1000000≈72800ppm
In short, the following concentrations are observed:
[SolutionA] = 100ppm