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8 November, 09:29

How many mL of 1.0M CrCl3 solution would be necessary to precipitate all of the Pb2 + from 50mL of. 90M solution. 2CrCl3 + 3Pb (NO3) 2 - --> 3PbCl2 + 2Cr (NO3) 3A.) 10B.) 20C.) 30D.) 60

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  1. 8 November, 09:59
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    There is 30 mL of CrCl3 necessary

    Explanation:

    Step 1: Data given

    Volume of Pb2 + = 50 mL = 0.05L

    Molarity of Pb2 + = 0.90 M

    Molarity of CrCl3 = 1.0 M

    Step 2: The balanced equation

    2CrCl3 + 3Pb (NO3) 2 → 3PbCl2 + 2Cr (NO3) 3

    3PbCl2 → 3Pb2 + 6Cl-

    For 2 moles CrCl3 consumed, we need 3 moles Pb (NO3) 2 to produce 3 moles of PbCl2 and 2 moles of Cr (NO3) 3

    Step 3: Calculate moles Pb2+

    Moles Pb2 + = Molarity Pb2 + * volume

    Moles Pb2 + = 0.90 M * 0.05 L

    Moles Pb2 + = 0.045 moles

    Step 4: Calculate moles PbCl2

    For 2 moles CrCl3 consumed, we need 3 moles Pb (NO3) 2 to produce 3 moles of PbCl2 and 2 moles of Cr (NO3) 3

    For 0.045 moles of pb2 + we have 0.045 moles of PbCl2

    Step 5: Calculate moles of CrCl3

    For 3 moles PbCl2 produced, we need 2 moles CrCl3 consumed.

    For 0.045 moles of PbCl2, we need 0.030 moles of CrCl3

    Step 6: Calculate volume of CrCl3 solution

    Volume = moles CrCl3 / Molarity

    volume = 0.030 moles / 1M

    volume = 0.030 L = 30mL

    There is 30 mL of CrCl3 necessary
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Home » Chemistry » How many mL of 1.0M CrCl3 solution would be necessary to precipitate all of the Pb2 + from 50mL of. 90M solution. 2CrCl3 + 3Pb (NO3) 2 - --> 3PbCl2 + 2Cr (NO3) 3A.) 10B.) 20C.) 30D.) 60
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