Chemistry Labs

Problem 1

A damaged label on an acid bottle. The label on a bottle containing a dilute aqueous solution of an acid became damaged so that only its concentration was readable. A pH meter showed that the hydrogen-ion concentration was equal to the value on the label ([HX+]=c[\ce{H+}] = c). (1.1) Give the formulae of four acids that could have been in the solution if the pH changed by one unit after a tenfold dilution. (1.2) Could it be possible that the dilute solution contained sulfuric acid (pKa2=1.99pK_{a2} = 1.99)? Answer Yes or No; if yes, calculate or estimate the pH. (1.3) Could it be possible that the solution contained acetic acid (pKa=4.76pK_a = 4.76)? Answer Yes or No; if yes, calculate or estimate the pH. (1.4) Could it be possible that the solution contained EDTA (ethylenediaminetetraacetic acid; pKa1=1.70pK_{a1} = 1.70, pKa2=2.60pK_{a2} = 2.60, pKa3=6.30pK_{a3} = 6.30, pKa4=10.60pK_{a4} = 10.60)? Answer Yes or No; if yes, calculate the concentration.
Step 1 of 4: Strong monoprotic acids
HCl, HBr, HI, HNOX3 (or HClOX4)  ⇒  pH=−log⁡c  →  −log⁡(c/10)=pH+1\ce{HCl},\ \ce{HBr},\ \ce{HI},\ \ce{HNO3}\ (\text{or}\ \ce{HClO4}) \;\Rightarrow\; \mathrm{pH} = -\log c \;\rightarrow\; -\log(c/10) = \mathrm{pH} + 1
Analysis

Any univalent strong acid (HCl,HBr,HI,HNOX3,HClOX4\ce{HCl, HBr, HI, HNO3, HClO4}) is completely dissociated, so [HX+]=c[\ce{H+}] = c and a 10-fold dilution lowers cc by a factor of 10, increasing pH by exactly 1 unit. HF\ce{HF} is weak and does not qualify.