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(c) A piece of potassium has a mass of 1.564 g. (i) Calculate the number of moles in this piece of potassium. (relative atomic mass of potassium=39.1) __ (ii) The piece of potassium was reacted with water. The total volume of the solution produced was 5.0dm^3 Calculate the concentration of the solution produced in moldm^-3 If you did not get an answer for (c)(i) use the value 0.06 for the number of moles. (2)

Question

(c) A piece of potassium has a mass of 1.564 g.
(i) Calculate the number of moles in this piece of potassium.
(relative atomic mass of potassium=39.1)
__
(ii) The piece of potassium was reacted with water.
The total volume of the solution produced was
5.0dm^3
Calculate the concentration of the solution produced in
moldm^-3
If you did not get an answer for (c)(i)
use the value 0.06 for the number
of moles.
(2)

(c) A piece of potassium has a mass of 1.564 g. (i) Calculate the number of moles in this piece of potassium. (relative atomic mass of potassium=39.1) __ (ii) The piece of potassium was reacted with water. The total volume of the solution produced was 5.0dm^3 Calculate the concentration of the solution produced in moldm^-3 If you did not get an answer for (c)(i) use the value 0.06 for the number of moles. (2)

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MalcolmVeteran · Tutor for 11 years

Answer

## Step 1: Calculate the number of moles in the piece of potassium.<br />\( n = \frac{m}{M} = \frac{1.564 \, \text{g}}{39.1 \, \text{g/mol}} = 0.04 \, \text{mol} \)<br /><br />## Step 2: Calculate the concentration of the solution produced.<br />\( C = \frac{n}{V} = \frac{0.04 \, \text{mol}}{5.0 \, \text{dm}^3} = 0.008 \, \text{mol/dm}^3 \)

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## Step 1: Calculate the number of moles in the piece of potassium.<br />The number of moles in a given mass of a substance can be calculated using the formula:<br /><br />### \( n = \frac{m}{M} \)<br /><br />where:<br />- \( n \) is the number of moles,<br />- \( m \) is the mass of the substance, and<br />- \( M \) is the molar mass of the substance.<br /><br />Given that the mass of the potassium (\( m \)) is 1.564 g and the relative atomic mass of potassium (\( M \)) is 39.1 g/mol, we can substitute these values into the formula to find the number of moles.<br /><br />## Step 2: Calculate the concentration of the solution produced.<br />The concentration of a solution can be calculated using the formula:<br /><br />### \( C = \frac{n}{V} \)<br /><br />where:<br />- \( C \) is the concentration of the solution,<br />- \( n \) is the number of moles of solute, and<br />- \( V \) is the volume of the solution.<br /><br />Given that the number of moles of potassium (\( n \)) is the result we obtained from step 1 and the volume of the solution (\( V \)) is 5.0 dm³, we can substitute these values into the formula to find the concentration of the solution.
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