Buffers resist changes in pH upon the addition of small amounts of acid or base. They work by providing conjugate acid-base pairs that absorb added H+ or OH- ions. Common buffer systems include acetic acid/sodium acetate and phosphoric acid/sodium phosphate. The Henderson-Hasselbalch equation relates a buffer's pH to the pKa of the acid/base pair and the concentrations of the components. Buffers have important applications in biological systems like blood and pharmaceutical products where a stable and precise pH is required.