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Weak Acid Strong Base Titrations quiz
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What chart do you use when reacting a weak acid with a strong base in titrations?
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What chart do you use when reacting a weak acid with a strong base in titrations?
You use an ICF chart (Initial, Change, Final) instead of an ICE chart, and you use moles instead of molarity.
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What chart do you use when reacting a weak acid with a strong base in titrations?
You use an ICF chart (Initial, Change, Final) instead of an ICE chart, and you use moles instead of molarity.
What does the strong base do in a weak acid-strong base titration?
The strong base neutralizes the weak acid by reacting with its H+ ions to form water.
What is produced when H+ from the weak acid reacts with OH- from the strong base?
Water is produced from the reaction between H+ and OH-.
What is the conjugate base formed in the titration of nitrous acid with sodium hydroxide?
Sodium nitrite (NO2-) is the conjugate base formed, which has one less H than nitrous acid.
What are the three calculation points in a weak acid-strong base titration?
The three points are before the equivalence point, at the equivalence point, and after the equivalence point.
What remains after titration before the equivalence point?
Both weak acid and its conjugate base remain, forming a buffer solution.
Which equation is used to find pH before the equivalence point in a weak acid-strong base titration?
The Henderson-Hasselbalch equation is used to find pH when a buffer is present.
How do you calculate pH before the equivalence point using the Henderson-Hasselbalch equation?
pH = pKa + log([conjugate base]/[weak acid]), using the moles of each remaining after reaction.
What happens after the equivalence point in a weak acid-strong base titration?
The strong base is in excess, and only strong base and conjugate base remain; no buffer is present.
How do you find pH after the equivalence point in a weak acid-strong base titration?
Calculate the molarity of the excess strong base, find pOH, then use pH = 14 - pOH.
What is true about the amounts of acid and base at the equivalence point?
The moles of weak acid and strong base are equal, so both are completely neutralized.
What remains at the equivalence point in a weak acid-strong base titration?
Only the conjugate base remains in solution at the equivalence point.
How do you determine pH at the equivalence point in a weak acid-strong base titration?
Find the molarity of the conjugate base, set up an ICE chart, and use Kb to calculate pH.
Why can't you use the Henderson-Hasselbalch equation after the equivalence point?
There is no buffer present because all weak acid has been neutralized, so the equation does not apply.
What principle explains the transfer of moles from reactants to products in titration?
The law of conservation of mass states that matter is neither created nor destroyed, only transformed.