Consider the following Brønsted - Lowry equilibrium system:
HSO3−+H2PO4−⇌SO32−+H3PO4
What are the two Brønsted - Lowry bases in the equilibrium above?
H2PO4−and SO32−HSO3−and H3PO4H2PO4−and H3PO4HSO3−and SO32−
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Answer from Sia
Posted 10 months ago
B
Key Concept
Brønsted-Lowry acid-base theory
Explanation
In the Brønsted-Lowry acid-base theory, an acid is a proton (H⁺) donor, and a base is a proton acceptor. In the given equilibrium, HSO3− acts as an acid by donating a proton to become SO32−, and H3PO4 acts as an acid by donating a proton to become H2PO4−. Therefore, the corresponding bases that accept the protons are SO32− and H2PO4−. However, since the question asks for the bases in the equilibrium, the correct answer is the species that are acting as bases, which are HSO3− as it can accept a proton to revert to its acid form, and H3PO4 as it can donate a proton to revert to its conjugate base form, H2PO4−.
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