3.6
약산을 강염기로 적정하면 물과 산의 짝염기가 형성됩니다. 예를 들어, 수산화나트륨으로 아세트산을 적정하면 물과 아세트산나트륨이 형성됩니다. 아세트산과 아세트산 나트륨의 용액은 적정의 여러 단계에서 상대 농도가 약산과 그 짝염기의 백분율을 나타내는 α 값으로 표시되는 완…
아세트산과 수산화나트륨을 적정하면 아세트산나트륨과 물이 생성되어 완충액이 생성된다는 점을 기억하십시오.
적정의 다양한 지점 동안 완충 용액에서 서로 다른 종의 상대 농도는 알파 값으로 표시됩니다.
곡선은 아세트산과 수산화나트륨의 적정을 나타내는 반면, 알파-매듭 및 알파-온으로 표시된 직선은 각각 아세트산과 아세테이트 이온의 상대 평형 농도를 나타냅니다.
처음에 0.987의 알파 매듭 값은 아세트산의 98.7%가 해리되지 않고 나머지 1.3%는 아세테이트 이온을 구성한다는 것을 시사합니다.
교차점 또는 반당량점에서 pH는 pKa 와 같습니다.따라서, 용액은 아세트산과 아세테이트 이온의 농도가 동일합니다.
적정이 진행됨에 따라 아세트산인 알파-매듭의 농도는 당량점에서 거의 0으로 감소합니다. 또는 아세테이트 이온인 알파-1의 농도가 증가하여 통일성에 접근합니다.
Q1: What happens to acetic acid and acetate ions during titration with sodium hydroxide?
During titration of acetic acid with sodium hydroxide, the weak acid is gradually converted to its conjugate base, sodium acetate, forming a buffer solution. The alpha values track this composition change: initially, alpha-0 (acetic acid) is 0.987 and alpha-1 (acetate ions) is 0.013. As titration proceeds, alpha-0 decreases while alpha-1 increases, reaching equal concentrations at the half-equivalence point where pH equals pKa.
Q2: What do alpha values represent in an acid-base titration?
Alpha values represent the relative equilibrium concentration or fractional composition of species in a buffer solution during titration. Alpha-0 (α0) indicates the fraction of undissociated weak acid, while alpha-1 (α1) indicates the fraction of conjugate base. These values are expressed as decimals or percentages, allowing visualization of how solution composition changes throughout the titration process.
Q3: Why is the half-equivalence point significant in weak acid titrations?
At the half-equivalence point, the pH of the solution equals the pKa of the weak acid. At this critical point, the concentrations of acetic acid and acetate ions are equal, with alpha-0 and alpha-1 both equal to 0.5. This relationship between pH and pKa makes the half-equivalence point essential for understanding buffer behavior and predicting solution pH during titration.
Q4: What is the composition of the solution at the equivalence point?
At the equivalence point, the titration is complete and nearly all acetic acid has been converted to acetate ions. The alpha-0 value drops to nearly zero, while alpha-1 approaches unity (1.0), indicating the solution is predominantly sodium acetate. This conjugate base solution exhibits basic properties due to hydrolysis of acetate ions.
Q5: How does the buffer solution form during the titration of acetic acid?
As sodium hydroxide is added to acetic acid, a buffer forms because both the weak acid (acetic acid) and its conjugate base (acetate ions) are present in solution. The buffer composition changes continuously: initially dominated by acetic acid with trace acetate, then becoming increasingly acetate-rich. This coexistence of weak acid and conjugate base maintains relatively stable pH across much of the titration curve.
Q6: What percentage of acetic acid remains undissociated before titration begins?
Before any sodium hydroxide is added, the alpha-0 value is 0.987, meaning 98.7% of the acetic acid remains undissociated. Only 1.3% of the acetic acid has dissociated into acetate ions and hydrogen ions. This initial composition reflects the weak nature of acetic acid and its limited tendency to ionize in aqueous solution.
Q7: How do alpha values change as the titration progresses toward equivalence?
As titration proceeds, alpha-0 (acetic acid fraction) continuously decreases from 0.987 toward zero, while alpha-1 (acetate fraction) increases from 0.013 toward unity. The rate of change accelerates near the equivalence point. This inverse relationship between the two alpha values reflects the conversion of weak acid to conjugate base and is fundamental to understanding buffer capacity and solution composition changes.