Strong Acid Strong B..
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Strong Acid–Strong Base Mixture Calculations Example 1 Here we’ll go over an example where a strong acid is mixed with a strong base, and we calculate the pH of the final mixture. 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. We’re given that 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. And we’re asked to calculate the pH of the final mixture. Sr OH 2 Sr 2 2OH 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. We’ll point out something important here. Strontium hydroxide is a strong base, Sr OH 2 Sr 2 2OH 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. and its formula, Sr(OH)2, has 2 OH’s in it. Sr OH 2 Sr 2 2OH Dissociation Equation 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. So when we write the balanced dissociation equation for Sr(OH)2. 2 mol OH 1 mol Sr OH 2 Sr OH 2 Sr 2 2OH 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. We see that there are 2 moles of OH- for each mole of Sr(OH)2. 2 mol OH 1 mol Sr OH 2 Sr OH 2 Sr 2 2OH 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. So we can use this as a conversion factor mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. We’ll start by calculating the initial moles of OH minus added. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. We take 0.200 moles of Sr(OH)2 per L mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Multiply it by the conversion factor 2 mol OH- over 1 mole Sr(OH)2. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. And by 0.150 L. We rounded this to 3 significant figures to save room here. The concentration 0.200 mol/L is only 3 significant figures so the answer to this calculation is limited to 3 significant figures. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. When we multiply all three numbers we get 0.0600 mol. So the initial moles of OH minus added is 0.0600 mol. Notice, this is expressed to 3 significant figures, which is consistent with the given data. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Our next step is to calculate the initial moles of H+ added. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. The H+ comes from the strong acid nitric acid, or HNO3. Each HNO3 releases 1 proton, so we take 0.100 mol HNO3 per L mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Times 1 mol of H+ per 1 mol of HNO3 mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Times 0.350 L. Again we rounded this to 3 significant figures to save room. The number of significant figures in the answer is limited by the 3 significant figures in 0.100 M. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. The answer comes out to 0.0350 mol. So the initial moles of H+ added is 0.0350 moles. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Notice that in preserving 3 significant figures, both of these have 4 decimal places mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial Excess 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol H initial 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Comparing the initial moles of OH minus with the initial moles of H+, we see that we have more moles of OH minus than of H+, so the OH minus is in excess in this case. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. The excess moles of OH minus mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Is 0.0600 mol OH minus mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. minus 0.0350 mol H+ mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Which equals 0.0250 mol OH minus mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol 4 decimal 4 decimal 4 decimal OH 0.0500 M 0.150 L 0.350 0.500 L placesL places places pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Notice the numbers we’re subtracting both have 4 decimal places, so our answer must also have 4 decimal places. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 3 significant 0.150 L 0.350 L 0.500 L 0.0500 M figures pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. When expressed to 4 decimal places, this number has 3 significant figures. The zero’s to the left of the 2 are not significant, but the zero after the 5 is. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Since the hydroxide ion is in excess, we calculate its concentration in the final mixture. It is equal to mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. 0.0250 moles mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Divided by the total volume of the solution, which is 0.150 L of Strontium hydroxide solution, mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Plus 0.350 L of HNO3 solution. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. So the concentration of OH minus is 0.0250 moles over 0.500 L mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Which Equals 0.0500 molar mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Because we have base in excess, we can calculate the pOH mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Which is the negative log of the hydroxide ion concentration mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Or the negative log of 0.0500 mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Which comes out to 1.301 . None of our data or calculations in this problem have less than 3 significant figures, so the pOH has 3 significant figures or three decimal places. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Now we can calculate the pH mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Which is 14 minus the pOH mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Or 14 minus 1.301 mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. Which is 12.699. This must has 3 significant figures so its expressed to 3 decimal places. mol OH initial 0.200 mol Sr(OH) 2 2 mol OH 0.150 L 0.0600 mol OH 1L 1mol Sr(OH) 2 mol H initial 0.100 mol HNO 3 1mol H 0.350 L 0.0350 mol H 1L 1mol HNO 3 Excess mol OH 0.0600 mol OH 0.0350 mol H 0.0250 mol OH 0.0250 mol 0.0250 mol OH 0.150 L 0.350 L 0.500 L 0.0500 M pOH log OH log 0.0500 1.301 pH 14.000 pOH 14.000 1.301 12.699 pH of final mixture 150.0 mL of 0.200 M Sr(OH)2 is added to 350.0 mL of 0.100 M HNO3. Calculate the pH of the final mixture. We have now answered the question we set out to answer. The pH of the final mixture is 12.699. This is relatively highly basic which is consistent with the fact that OH- is in excess.
