25.0 mL aliquots of acidified tin(II) iodide are titrated with 0.396 mol/L of potassium dichromate. The following information was collected: Table 1: Volume of 0.396 mol/L potassium dichromate added to 25.0 mL of acidified tin(II) iodide. Initial Final Volume Volume (mL) Trial (mL) 3.07 1 23.92 Trial 1.13 2 20.81 Trial 2.34 3 22.05 Trial 0.32 4 20.02 What is the molar concentration of the tin(II) iodide solution?

Fundamentals Of Analytical Chemistry
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Chapter16: Applications Of Neutralization Titrations
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Problem 16.20QAP
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25.0 mL aliquots of acidified tin(II) iodide are
titrated with 0.396 mol/L of potassium dichromate.
The following information was collected:
Table 1: Volume of 0.396 mol/L potassium
dichromate added to 25.0 mL of acidified tin(II)
iodide.
Initial
Final
Volume Volume
(mL) (mL)
Trial
3.07
1
23.92
Trial
1.13
20.81
Trial
2.34
3
22.05
Trial
0.32
4
20.02
What is the molar concentration of the tin(II) iodide
solution?
Answer to three decimal places.
Transcribed Image Text:25.0 mL aliquots of acidified tin(II) iodide are titrated with 0.396 mol/L of potassium dichromate. The following information was collected: Table 1: Volume of 0.396 mol/L potassium dichromate added to 25.0 mL of acidified tin(II) iodide. Initial Final Volume Volume (mL) (mL) Trial 3.07 1 23.92 Trial 1.13 20.81 Trial 2.34 3 22.05 Trial 0.32 4 20.02 What is the molar concentration of the tin(II) iodide solution? Answer to three decimal places.
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