Source: Smaa Koraym at Johns Hopkins University, MD, USA
In this experiment, you will create a saturated solution of sodium tetraborate decahydrate, also called borax. In water, borax dissociates into two sodium cations and one tetraborate anion. When an aqueous borax solution is saturated, it means that it contains the maximum amount of dissolved solute, which is borax, for that volume of solvent, which is water. Any additional solid won't appear to dissolve.
Since solubility is temperature-dependent, each group will create a saturated solution at a different temperature. More borax will dissolve at higher temperatures, resulting in a solution with a higher borax concentration.
| Temperature (°C) | Amount of borax (g) |
| 10 | 4 |
| 20 | 6 |
| 30 | 8 |
| 40 | 13 |
| 50 | 21 |
| Assigned temperature (°C) | ||
| Borax mass (g) | ||
| Trial | Solution temperature (°C) | Volume (mL) of 0.5 M HCl added |
| 1 | ||
| 2 | ||
| 3 | ||
| 4 | ||
| 5 |
Now you will determine how much borax has dissolved in your saturated solution. Recall the chemical reaction showing how borax dissociates in water, forming the tetraborate ion. Since the tetraborate ion is a base, it will react with acid following a neutralization reaction.
When the amount of acid is twice the amount of tetraborate, the solution is neutralized. To do this, we will slowly dispense HCl into the borax solution until it is neutralized, meaning that the acid and base react to form water and salt and a neutral pH. We'll use the pH indicator bromocresol green to let us know when the solution is neutralized, as it turns from blue to pale greenish-yellow when the pH is neutral.
| Assigned temperature (°C) | Tavg (°C) | Vavg (mL) | Tavg (K) | 1/Tavg (K) | Moles of 0.5 M HCl | Molarity of Na2[B4O5(OH)4] | Ksp | lnKsp | ΔG (kJ/mol) |
| 10 °C | |||||||||
| 20 °C | |||||||||
| 30 °C | |||||||||
| 40 °C | |||||||||
| 50 °C |
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Q1: What does it mean when a solution is saturated?
A saturated solution contains the maximum amount of dissolved solute for a given volume of solvent at a specific temperature. In this experiment, the saturated solution of borax means no additional solid will dissolve in the water. Any extra borax added remains as undissolved crystals at the bottom of the beaker.
Q2: How does temperature affect the amount of borax that dissolves?
Solubility is temperature-dependent, so more borax dissolves at higher temperatures. At 10°C, only 4 grams of borax dissolves in 50 mL of water, while at 50°C, 21 grams dissolves. This temperature dependence allows different groups to create saturated solutions with varying borax concentrations for comparison.
Q3: Why is bromocresol green used in the titration procedure?
Bromocresol green is a pH indicator that changes color when the solution reaches neutrality. It turns from blue to pale greenish-yellow at neutral pH, signaling the endpoint of the titration. This color change helps you determine when the acid has completely neutralized the tetraborate base in the borax solution.
Q4: What is the relationship between HCl volume and tetraborate concentration?
The volume of hydrochloric acid used in titration directly indicates tetraborate concentration. Since two moles of HCl neutralize one mole of tetraborate, you can calculate tetraborate moles from the HCl volume and molarity. This calculation allows you to determine the solubility product constant for borax at each temperature.
Q5: Why is borax more soluble at higher temperatures?
The borax dissociation reaction is endothermic, absorbing energy and requiring heat to proceed. At higher temperatures, more thermal energy is available to break apart the crystal structure and dissolve borax into sodium cations and tetraborate anions. This explains why the reaction becomes spontaneous only above certain temperatures.
Q6: How do you prevent the pipette from clogging during the experiment?
Before collecting the saturated borax solution, pipette hot water several times into the waste beaker to warm up the pipette. This prevents the borax from cooling and crystallizing inside the pipette tip. Additionally, always draw solution from the top of the beaker to avoid contact with crystallizing borax at the bottom.
Q7: What does a positive Gibbs free energy value indicate about borax dissolution?
A positive Gibbs free energy means the dissolution reaction is not spontaneous at that temperature and requires energy input to proceed. At low temperatures, borax dissolution has positive ΔG, so the salt prefers its crystal structure. However, at higher temperatures, ΔG becomes negative, making dissolution spontaneous and favoring the dissolved state.