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12 March, 07:30

In run 1, you mix 8.0 mL of the 43 g/L MO solution (MO molar mass is 327.33 g/mol), 2.60 mL of the 0.040 M SnCl2 in 2 M HCl solution, 5.43 mL of 2.0M HCl solution, and 3.73 mL of 2.0M NaCl solution. What is the [Sn2 + ]?

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  1. 12 March, 07:37
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    The concentration of [Sn⁺²] will be calculated by first calculating the moles of SnCl₂ added as these moles will give us the moles of [Sn⁺²] ion.

    Moles of SnCl₂ = molarity X volume = 0.04 X 2.60 = 0.104 milli moles [as volume is in mL]

    The moles of [Sn⁺² = 0.104 mmol

    the total volume in solution = volume due to MO + volume due to SnCl₂ + volume due to HCl + volume due to NaCl

    Total volume = 8+2.60+5.43+3.73 = 19.76 mL

    Concentration = moles / volume

    concentration [Sn⁺²] = 0.104mmol / 19.76 mL = 0.0053 mol / L
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