Extraction is a technique to separate components from a mixture. You are already familiar with extraction. Any time you steep tea, you're extracting water-soluble compounds, like caffeine and flavors, from the tea leaves into your hot water. This is an example of a solid-liquid extraction.
Liquid-liquid extraction is another type of extraction where the mixture is dissolved in two immiscible liquid phases. The solvents must be immiscible, meaning they do not mix and are separate phases. Liquid-liquid extractions are performed in a separatory funnel so that the more dense solvent will settle to the bottom and the less dense solvent will sit on top. Then, each solute compound will transfer to the phase in which it is most soluble. Therefore, it is important to choose solvents with different polarities.
In general, non-polar solutes will partition into the organic phase, and polar solutes will partition into the aqueous phase. The partition coefficient, K, is the ratio of solute concentration in the organic phase to that in the aqueous phase. Once the solutes have separated, the two different phases are collected. Keep in mind that it is likely that there will be residue of each component in both phases.
An acid-base extraction is a special type of liquid-liquid extraction that separates acidic and basic compounds based on the solubility differences. Recall that an acid is a compound that donates a proton when dissolved in water, and a base is a compound that accepts a proton.
To separate acidic compounds, a base is added to the mixture. The base will accept a proton from the acidic compound, making it ionic. Conversely, adding an acid would transfer a proton to a basic compound. In both instances, the ionic compound will transfer to the aqueous phase, and the neutral compounds will partition to the organic phase. The ionic compound is collected and then either deprotonated or reprotonated to convert it back to its original compound.
In this lab, you will separate a mixture of cellulose, benzoic acid, and caffeine. First, you will use extraction and filtration to isolate cellulose. Then, you will perform an acid-base extraction to separate benzoic acid and caffeine.
Source: Lara Al Hariri and Ahmed Basabrain at the University of Massachusetts Amherst, MA, USA
Extraction and filtration can separate compounds based on their solubility properties. In this lab, you'll separate a mixture of cellulose, caffeine, and benzoic acid based on their solubilities in dichloromethane, or DCM, and water.
Caffeine and benzoic acid are both soluble in DCM, but cellulose is not. Thus, in this part, you'll first dissolve as much of the mixture as possible in DCM and filter out insoluble cellulose. You'll continue working with the solution of benzoic acid and caffeine in the next section, and you'll measure the mass of the recovered cellulose once it dries.
| Compound | Empty container (g) | Sample + container (g) | Compound recovered (g) | Recovered mass percentage |
| Cellulose | ||||
| Caffeine | ||||
| Benzoic acid | - | - | ||
| Starting mass of mixture (g) | Recovered mass of mixture (g) | - |
In this part of the experiment, you will separate benzoic acid and caffeine using DCM and water for solvents. This makes a good solvent pair for liquid-liquid extraction because DCM and water are immiscible and have different densities. However, caffeine and benzoic acid are both much less soluble in water than in DCM.
To separate these compounds, you'll mix the benzoic acid and caffeine solution with sodium hydroxide to convert benzoic acid to sodium benzoate, which is highly water-soluble and virtually insoluble in DCM. The caffeine will be mostly unaffected. When the mixture settles into layers, all sodium benzoate will be in the aqueous layer because it's insoluble in DCM.
A small amount of caffeine will be in the aqueous layer, but most of it will stay in DCM. You'll keep the aqueous sodium benzoate layer for the last part of the lab, where you will evaporate the solvent from the organic layer to recover solid caffeine.
Sodium hydroxide is corrosive, so be careful while handling and transporting it. Strong bases can cause ground-glass surfaces like the separatory funnel joint and stopper to fuse together, so always add sodium hydroxide through a long stem glass funnel to keep it from contacting the ground glass.
In the last part of the lab, you'll use hydrochloric acid to reprotonate the benzoate anion. Hydrochloric acid is toxic and corrosive, so be careful with it. Benzoic acid is minimally soluble in water, so most of it will precipitate from solution, allowing you to collect it by filtration.
| Compound | Starting mass percentage | Theoretical initial mass (g) | Recovered mass (g) | Percent yield |
| Cellulose | 5 | |||
| Caffeine | 47.5 | |||
| Benzoic acid | 47.5 | |||
| Starting mass of mixture (g) | - | - |
| Error | Source of Error |
| Cellulose mass is very high and the other compound masses are low | Caffeine and benzoic acid might not have dissolved completely at the start of the lab and instead remained on the filter paper labeled for cellulose. |
| Benzoic acid mass is low compared to the recovered caffeine | Benzoic acid was not completely converted to sodium benzoate, leaving a mix of caffeine and benzoic acid in DCM. |
| Caffeine recovered mass is low | Loss due to the aqueous washes, particularly if the aqueous base was warm |
| Low benzoic acid mass recovered | Incomplete protonation of sodium benzoate, solution too warm, or precipitation disturbed |
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Q1: Why is dichloromethane used to dissolve the mixture in the cellulose recovery step?
Dichloromethane (DCM) selectively dissolves caffeine and benzoic acid while leaving cellulose insoluble. This solubility difference allows you to separate cellulose from the other compounds through filtration. The insoluble cellulose remains on the filter paper while the dissolved compounds pass through into the filtrate.
Q2: How does sodium hydroxide help separate benzoic acid from caffeine?
Sodium hydroxide converts benzoic acid into sodium benzoate, which is highly water-soluble and insoluble in DCM. This chemical transformation allows the aqueous and organic layers to separate, with sodium benzoate moving into the water layer while caffeine remains in the DCM layer, enabling effective separation of these two compounds.
Q3: What is the purpose of magnesium sulfate in the organic layer?
Magnesium sulfate acts as a drying agent to remove residual water from the organic layer containing caffeine. You add it until a portion remains white and powdery, indicating it has absorbed available moisture. This drying step ensures the purity of the recovered caffeine by removing water before evaporation.
Q4: Why is the aqueous solution chilled before adding hydrochloric acid?
Chilling the aqueous solution in an ice bath lowers the solubility of benzoic acid in water. When hydrochloric acid reprotonates the benzoate anion back to benzoic acid, the cold temperature promotes precipitation of the solid compound, making it easier to collect by filtration and improving recovery yield.
Q5: What does the pH paper measurement indicate during the reprotonation step?
The pH paper confirms that sufficient hydrochloric acid has been added to convert all sodium benzoate back to benzoic acid. The target pH range of 1–3 ensures complete reprotonation. If the pH is too high, benzoate remains in solution; if too low, excess acid contaminates the product.
Q6: How do you calculate the percent yield for each recovered compound?
Percent yield is calculated by dividing the recovered mass of each compound by its theoretical initial mass, then multiplying by 100. The theoretical mass is determined from the known composition of the mixture (5% cellulose, 47.5% caffeine, 47.5% benzoic acid) multiplied by your starting sample mass.
Q7: What does it mean if the sum of recovered compound masses exceeds the starting mixture mass?
If the total recovered mass is greater than the starting mass, one or more compounds retained residual moisture when weighed. You should reweigh the compounds after allowing them to dry completely. Accurate mass measurements require all solids to be completely dry to ensure valid percent yield calculations.