Source: Lara Al Hariri and Ahmed Basabrain at the University of Massachusetts Amherst, MA, USA
In this experiment, you will perform a steam distillation to extract an essential oil from an orange peel.
| Temperature of steam distillation (°C) | |
| Mass of the orange peels (g) | |
| Mass of empty flask (g) | |
| Mass of flask + essential oils (g) | |
| Mass of essential oils (g) | |
| Percent mass of essential oil recovered |
Liquid-liquid extraction is performed in a separatory funnel and is used to move a solute to another liquid in which it is more soluble. The two liquids must be immiscible and are usually an aqueous solution and a non-water-soluble organic liquid. Upon mixing, the solute is extracted into the other phase. Once the liquids settle into layers, they can be drained from the funnel one at a time.
In the next part of the experiment, liquid-liquid extraction will be used to extract the essential oil from the water into an organic solvent. You'll then evaporate the organic solvent to recover the essential oil.
You distilled the essential oil in this lab at close to 100 °C. The orange oil consists mainly of (+)limonene, which has a boiling point of 176 °C. Thus, the steam distillation technique lets us extract it from the orange peel at a temperature that will not compromise its structure.
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Q1: Why is steam distillation used to extract essential oil from orange peels?
Steam distillation allows extraction of essential oils at temperatures below their boiling points, preventing thermal damage. Orange oil's main component, limonene, has a boiling point of 176 °C, but steam distillation extracts it near 100 °C, preserving its chemical structure and properties.
Q2: What is the purpose of the condenser in a steam distillation apparatus?
The condenser cools and liquefies the vaporized essential oil and water mixture as it exits the distilling head. Water flows through the condenser inlet and outlet ports to maintain cooling, allowing vapors to condense into liquid droplets that drip into the collection flask at approximately 20 drops per minute.
Q3: How does liquid-liquid extraction separate essential oil from the distillate?
Liquid-liquid extraction uses diethyl ether, an immiscible organic solvent, to selectively dissolve the essential oil from the aqueous distillate. The two liquids form separate layers in a separatory funnel and can be drained individually, moving the oil into the organic phase where it is more soluble.
Q4: What role does magnesium sulfate play in the essential oil extraction process?
Magnesium sulfate acts as a desiccant, removing residual water from the organic layer containing dissolved essential oil. After adding magnesium sulfate and allowing it to sit for 20 minutes, the mixture is filtered to remove the desiccant before the organic solvent is evaporated.
Q5: Why is the separatory funnel vented during the extraction process?
Venting the separatory funnel releases pressure that builds up when the immiscible liquids are shaken together. By turning the funnel upside down and opening the stopcock briefly, you prevent pressure buildup that could force the stopper out or cause the tubing to disconnect unexpectedly.
Q6: How is the mass of extracted essential oil calculated and expressed?
The mass of essential oil is determined by subtracting the mass of the empty flask from the mass of the flask containing the oil after evaporation. The percentage yield is calculated by dividing the oil mass by the original dried peel mass and multiplying by 100, typically yielding 0.9–4 wt% for orange peels.
Q7: What precautions must be taken when assembling the steam distillation apparatus?
All glass joints must be lightly greased to ensure tight connections and prevent leaks. Each joint should be secured with a plastic clip, and the thermometer bulb must be positioned below the bend of the distilling head to accurately measure vapor temperature during the distillation process.