Chapter 4: Problem 76
How does an acid-base indicator work?
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Chapter 4: Problem 76
How does an acid-base indicator work?
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Describe the steps involved in preparing a solution of known molar concentration using a volumetric flask.
Before aluminum was obtained by electrolytic reduction from its ore \(\left(\mathrm{Al}_{2} \mathrm{O}_{3}\right)\), the metal was produced by chemical reduction of \(\mathrm{AlCl}_{3}\). Which metals would you use to reduce \(\mathrm{Al}^{3+}\) to \(\mathrm{Al} ?\)
Calculate the mass of precipitate formed when \(2.27 \mathrm{~L}\) of \(0.0820 \mathrm{M} \mathrm{Ba}(\mathrm{OH})_{2}\) are mixed with \(3.06 \mathrm{~L}\) of \(0.0664 \mathrm{M} \mathrm{Na}_{2} \mathrm{SO}_{4}\)
The recommended procedure for preparing a very dilute solution is not to weigh out a very small mass or measure a very small volume of a stock solution. Instead, it is done by a series of dilutions. A sample of \(0.8214 \mathrm{~g}\) of \(\mathrm{KMnO}_{4}\) was dissolved in water and made up to the volume in a 500 -mL volumetric flask. A 2.000 -mL sample of this solution was transferred to a 1000 -mL volumetric flask and diluted to the mark with water. Next, \(10.00 \mathrm{~mL}\) of the diluted solution were transferred to a 250 -mL flask and diluted to the mark with water. (a) Calculate the concentration (in molarity) of the final solution. (b) Calculate the mass of \(\mathrm{KMnO}_{4}\) needed to directly prepare the final solution.
Give the oxidation number of the underlined atoms in the following molecules and ions: (a) \(\underline{\mathrm{ClF}},\) (b) \(\underline{\mathrm{IF}}_{7}\), (c) \(\underline{\mathrm{CH}}_{4},\) (d) \(\underline{\mathrm{C}}_{2} \mathrm{H}_{2},\) (e) \(\underline{\mathrm{C}}_{2} \mathrm{H}_{4},\) (f) \(\mathrm{K}_{2} \mathrm{Cr} \mathrm{O}_{4},(\mathrm{~g}) \mathrm{K}_{2} \mathrm{Cr}_{2} \mathrm{O}_{7}\) (h) \(\mathrm{KMnO}_{4},\) (i) \(\mathrm{NaHCO}_{3},(\mathrm{j}) \underline{\mathrm{L} i}_{2},(\mathrm{k}) \mathrm{NaIO}_{3},(\mathrm{l}) \mathrm{K} \underline{\mathrm{O}}_{2}\) \((\mathrm{m}) \underline{\mathrm{PF}}_{6}^{-},(\mathrm{n}) \mathrm{K} \underline{\mathrm{Au}} \mathrm{Cl}_{4}\)
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