Chapter 12: Q5 TY (page 280)
If back titration required 13.00 mL Zn2+, what was the original concentration of Ni2+?
Short Answer
The original concentration of Ni2+ was 0.041M
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Chapter 12: Q5 TY (page 280)
If back titration required 13.00 mL Zn2+, what was the original concentration of Ni2+?
The original concentration of Ni2+ was 0.041M
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Give an example of the use of a masking agent
Calculate [HY3-] in a solution prepared by mixing 10.00 mL of 0.010 0 M VOSO4, 9.90 mL of 0.010 0 M EDTA, and 10.0 mL of buffer with a pH of 4.00
Consider the titration of 25.0 mL of 0.020 0 M MnSO4 with 0.010 0 M EDTA in a solution buffered to pH 8.00. Calculate pMn2+ at the following volumes of added EDTA and sketch the titration curve:
(a) 0 mL (b) 20.0 mL (c) 40.0 mL (d) 49.0 mL (e) 49.9 mL (f) 50.0 mL (g) 50.1 mL
(h) 55.0 mL (i) 60.0 mL
Describe what is done in a displacement titration and give an Example
Calculate pCu2+ at each of the following points in the titration of 50.00 mL of 0.001 00 M Cu2+ with 0.00100 M EDTA at pH 11.00 in a solution with [NH3] fixed at 1.00 M:
(a) 0 mL(b) 1.00 mL (c) 45.00 mL (d) 50.00 mL (e) 55.00 mL
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