In the following net ionic equation, identify each species as either a Bronsted-Lowry acid or a Bronsted-Lowry base. HCO3(aq) + CH3COOH(aq)=H₂CO3(aq) + CH3COO(aq) B-L base B-L acid ✓ B-L The formula for the conjugate The formula for the conjugate CH3COOH is B-L of HCO3 is of

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Chapter17: Acid-base(proton Transfer) Reactions
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Problem 12E
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In the following net ionic equation, identify each species as either a
Bronsted-Lowry acid or a Bronsted-Lowry base.
HCO3 (aq) + CH3COOH(aq)=H₂CO3 (aq) + CH3COO-(aq)
B-L base
B-L acid
The formula for the conjugate
The formula for the conjugate
CH3COOH is
Submit Answer
8 more group attempts remaining
B-L
Retry Entire Group
B-L
of HCO3 is
of
Transcribed Image Text:In the following net ionic equation, identify each species as either a Bronsted-Lowry acid or a Bronsted-Lowry base. HCO3 (aq) + CH3COOH(aq)=H₂CO3 (aq) + CH3COO-(aq) B-L base B-L acid The formula for the conjugate The formula for the conjugate CH3COOH is Submit Answer 8 more group attempts remaining B-L Retry Entire Group B-L of HCO3 is of
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