The titration of a polyprotic base such as sodium carbonate with a strong acid such as hydrochloric acid results in two equivalence points on the titration curve. At the first equivalence point, the carbonate ions in the base are completely converted to bicarbonate ions. The second equivalence point corresponds to the complete conversion of bicarbonate ions to carbonic acid, which dissociates into carbon dioxide and water. The region before the first equivalence point corresponds to the carbonate/bicarbonate buffer, and the area between the first and second equivalence points corresponds to the bicarbonate/carbonic acid buffer. While phenolphthalein is used to detect the first endpoint, a mixture of methyl orange and xylene cyanol is used to sharpen the second endpoint.

Tags
TitrationPolyprotic BaseSodium CarbonateStrong AcidHydrochloric AcidEquivalence PointsCarbonate IonsBicarbonate IonsCarbonic AcidCarbon DioxideWaterBuffer SystemPhenolphthaleinMethyl OrangeXylene Cyanol

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3.9 : Titration of Polyprotic Base with a Strong Acid

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3.1 : Acid–Base Titration: Overview

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3.2 : Titration of a Strong Acid with a Strong Base

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3.3 : Titration of a Weak Acid with a Strong Base

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3.4 : Titration of a Weak Base with a Strong Acid

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3.5 : Titration of a Weak Acid with a Weak Base

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3.6 : Solution Composition During Acid/Base Titrations

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3.7 : Mixtures of Acids

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3.8 : Titration in Nonaqueous Solvents

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3.10 : Titration of Polyprotic Acids with a Strong Base

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3.11 : Composition of Polyprotic Acid Solutions as a Function of pH

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3.12 : Buffers: Overview

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3.13 : Buffers: Buffer Capacity

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3.14 : Leveling Effect

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