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Titrations of Diprotic and Polyprotic Acids definitions
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Diprotic Acid
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Diprotic Acid
An acid with two acidic hydrogens, requiring two Ka values for buffer calculations.
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Diprotic Acid
An acid with two acidic hydrogens, requiring two Ka values for buffer calculations.
Polyprotic Acid
An acid with more than one acidic hydrogen, involving multiple Ka values.
Monoprotic Acid
An acid with a single acidic hydrogen, using one Ka value in buffer equations.
Henderson Hasselbalch Equation
A formula used to calculate pH of a buffer solution, involving pKa and concentrations of acid and base.
Conjugate Base
The species formed when an acid donates a proton, typically with one less hydrogen.
Ka Value
The acid dissociation constant, indicating the strength of an acid in solution.
pKa
The negative logarithm of the Ka value, used in pH calculations for buffers.
Acidic Form
The form of an acid with all its acidic hydrogens intact.
Intermediate Form
The form of a diprotic or polyprotic acid after losing one or more acidic hydrogens.
Basic Form
The form of an acid after losing all its acidic hydrogens.
Carbonic Acid
A diprotic acid example, with two acidic hydrogens, used in buffer solutions.
Phosphoric Acid
A triprotic acid example, with three acidic hydrogens, used in buffer solutions.
Molarity
A concentration unit, moles of solute per liter of solution, used in buffer calculations.
Sodium Bicarbonate
A compound used as a conjugate base in diprotic buffer solutions.
Sodium Carbonate
A compound representing the basic form in diprotic buffer solutions.