Q.42. The second pKa of phosphoric acid is 6.8. The ratio of πππππππ to πππππππ required to obtain
a buffer of pH 7.0 is ____ (rounded off to two decimal places).
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Phosphate buffers are essential in biochemistry and exams due to phosphoric acidβs multiple pKa values. The second pKa of 6.8 corresponds to the H2PO4β / HPO42- equilibrium, ideal for pH near 7. For a pH 7.0 buffer, the ratio of Na2HPO4 (base, [Aβ]) to NaH2PO4 (acid, [HA]) is 1.58.
Henderson-Hasselbalch Calculation
The Henderson-Hasselbalch equation is pH = pKa + log10 ( [Aβ] / [HA] ). Rearranging gives [Na2HPO4] / [NaH2PO4] = 10(pH β pKa).
Substitute pH 7.0 and pKa 6.8: 107.0 β 6.8 = 100.2 β 1.5849, rounded to 1.58.This means 1.58 moles of Na2HPO4 per mole of NaH2PO4 yields pH 7.0.
Why Second pKa for This Buffer
Phosphoric acid (H3PO4) has pKa1 β 2.1, pKa2 = 6.8, pKa3 β 12.4; the second controls buffers around pH 6-8. NaH2PO4 provides H2PO4β (acid), Na2HPO4 provides HPO42- (conjugate base).Effective buffering occurs within Β±1 of pKa, so pH 7.0 fits perfectly.
Common Exam Mistakes Explained
- Wrong ratio direction: Question asks Na2HPO4 / NaH2PO4 ([Aβ]/[HA]), not inverse (0.63); pH > pKa means base > acid.
- pKa confusion: Using pKa1 (2.1) gives absurd ratio; always match ionization step.
- Rounding error: 100.2 = 1.58489319246, rounds to 1.58 (two decimals).
- No options listed: Fill-in assumes direct calc; verifies via log check: log(1.58) β 0.20, pH = 6.8 + 0.2 = 7.0.
Practical Applications
Phosphate buffers mimic physiological pH 7.4 in labs and cells. For 1 L 0.1 M buffer, mix ~38.7 g NaH2PO4 and 61.3 g Na2HPO4 (MW 120/142 g/mol).Adjust volumes for equal concentration stocks using same ratio.
NOTE: Citations use web at end.
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