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1 March, 08:18

The forensic technician at a crime scene has just prepared a luminol stock solution by adding 18.0 g of luminol to H2O creating a solution with a total volume of 75.0 mL. What is the molarity of the stock solution of luminol? Before investigating the scene, the technician must dilute the luminol solution to a concentration of 5.00*10^-2 M. The diluted solution is then placed in a spray bottle for application on the desired surfaces. How many moles of luminol are present in 2.00 L of the diluted spray? What volume of the stock solution (Part A) would contain the number of moles present in the diluted solution (Part B) ?

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  1. 1 March, 08:21
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    Part A. 1.355 mol/L

    Part B. 0.100 mol

    Part C. 74.0 mL

    Explanation:

    Part A.

    The molar mass of luminol is 177.16 g/mol, so the number of moles at 18.0 g is:

    n = mass/molar mass

    n = 18.0/177.16

    n = 0.1016 mol

    The molarity is the number of moles divided by the volume (0.075 L)

    C = 0.1016/0.075

    C = 1.355 mol/L

    Part B.

    The number of moles is the molarity multiplied by the volume, so:

    n = 5.00x10⁻² mol/L * 2.00 L

    n = 0.100 mol

    Part C.

    To prepare a solution by dilution, we can use the equation

    C1V1 = C2V2

    Where C1 is the concentration of the initial (stock) solution, V1 is its volume necessary, C2 is the concentration of the diluted solution, and V2 is its volume.

    Thus, C1 = 1.355 M, C2 = 0.05 M, V2 = 2.00 L

    1.355V1 = 0.05*2

    V1 = 0.074 L

    V1 = 74.0 mL
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