A buffer solution contains 0.452 M KHSO, and 0.273 M Na,SO3. Determine the pH change when 0.109 mol KOH is added to 1.00 L of the buffer. pH after addition – pH before addition = pH change =
Ionic Equilibrium
Chemical equilibrium and ionic equilibrium are two major concepts in chemistry. Ionic equilibrium deals with the equilibrium involved in an ionization process while chemical equilibrium deals with the equilibrium during a chemical change. Ionic equilibrium is established between the ions and unionized species in a system. Understanding the concept of ionic equilibrium is very important to answer the questions related to certain chemical reactions in chemistry.
Arrhenius Acid
Arrhenius acid act as a good electrolyte as it dissociates to its respective ions in the aqueous solutions. Keeping it similar to the general acid properties, Arrhenius acid also neutralizes bases and turns litmus paper into red.
Bronsted Lowry Base In Inorganic Chemistry
Bronsted-Lowry base in inorganic chemistry is any chemical substance that can accept a proton from the other chemical substance it is reacting with.
![### Determining the pH Change in a Buffer Solution
**Problem Statement:**
A buffer solution contains two components with the following molar concentrations:
- **0.452 M KHSO₃**
- **0.273 M Na₂SO₃**
Our goal is to determine the pH change when **0.109 mol KOH** is added to **1.00 L** of this buffer solution.
**Equation Setup:**
\[ \text{pH after addition} - \text{pH before addition} = \text{pH change} = \_\_\_\_ \]
To find the pH change, you will need to understand the chemistry of the buffer and how the added KOH (a strong base) interacts with the components of the buffer. This involves understanding:
- Buffer equations
- Acid-base equilibria
- The Henderson-Hasselbalch equation (for easy calculation of pH before and after addition).
**Explanation of Buffer Interaction:**
1. **Initial Condition:**
The buffer contains weak acid (KHSO₃) and its conjugate base (Na₂SO₃).
2. **Reaction with KOH:**
\[ \text{KHSO₃} + \text{KOH} \rightarrow \text{K₂SO₃} + \text{H₂O} \]
3. **Understanding pH Calculation:**
After adding KOH, the concentrations of KHSO₃ and Na₂SO₃ will change based on the stoichiometry of the reaction. The new concentrations will be used to find the new pH using the Henderson-Hasselbalch equation:
\[ \text{pH} = \text{pKa} + \log \left(\frac{[\text{Conjugate Base}]}{[\text{Acid}]}\right) \]
**Note:**
- Calculate the pH before and after addition.
- Subtract the initial pH from the final pH to find the pH change.
Insert the calculated value in the space provided to quantify the pH change.
Understanding this process is fundamental for controlling reactions in various scientific and industrial applications, ensuring the solution maintains its buffering capacity upon the addition of acids or bases.
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**Interactive Diagrams:**
- Although there are no diagrams or graphs in the provided image, diagrams illustrating the reaction mechanism and pH changes in](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F03ba95c9-584b-483d-8f8a-8f0f9c4c55b7%2F722b04f8-3aad-4c9f-a71b-0d8a503100e6%2Fks399j_processed.png&w=3840&q=75)
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