👋 Hi! Need help finding lab supplies?
Chat with us on WhatsApp!
Chat with us
Home Blog What is a Separating Funnel and When…
Laboratory Glassware

What is a Separating Funnel and When Do You Need One?

21 Jul 2026 Varen Scientific 13 min read
What is a Separating Funnel and When Do You Need One?

A separating funnel is a piece of laboratory glassware that every analytical chemist, pharmaceutical scientist, and organic chemist uses regularly — yet it is rarely given the detailed consideration it deserves when equipping a laboratory. Understanding what a separating funnel is, how liquid-liquid extraction actually works, which funnel configuration is appropriate for a given application, and what specification choices matter most will help Irish laboratory professionals select the right equipment and use it correctly for reliable, reproducible extraction results. This guide covers everything from first principles.

What is a Separating Funnel?

A separating funnel — also referred to as a separatory funnel, separation funnel, or simply a sep funnel — is a specialised piece of laboratory glassware designed specifically for liquid-liquid extraction: the physical separation of two immiscible liquid phases that have been mixed together and then allowed to separate under gravity based on their different densities.

The defining structural features of a separating funnel are:

  • A conical or cylindrical glass body — large enough to hold the combined volume of the two liquid phases, with sufficient headspace for safe mixing and pressure venting. The body is manufactured from borosilicate 3.3 glass for chemical resistance to the full range of organic solvents and aqueous reagents used in liquid-liquid extraction.
  • A ground glass neck at the top — fitted with an NS (Normalschliff) standard taper ground glass stopper that seals the funnel during mixing and inversion. The stopper must fit securely to prevent leakage during shaking.
  • A stopcock at the bottom — a precision valve that controls the drainage of liquid from the funnel. The stopcock is the most critical functional component of the separating funnel: it must seal reliably against the extraction solvents used, operate smoothly for precise phase control, and resist chemical attack from aggressive solvents. Modern laboratory-grade separating funnels use PTFE (polytetrafluoroethylene) stopcocks rather than greased glass stopcocks — a significant practical advantage discussed in detail below.
  • A conical lower body or stem — the narrowing of the funnel body toward the stopcock concentrates the lower liquid phase at the drainage point, enabling precise identification of the phase boundary and clean separation of the two phases.

Separating funnels are manufactured from borosilicate 3.3 glass to ISO standards and are available in a wide range of capacities — from 50mL for small analytical-scale extractions to 2000mL for preparative-scale work. The shape of the funnel body — Squibb (cylindrical) or pear (conical) — determines suitability for different extraction scales and applications, as discussed below.

What is Liquid-Liquid Extraction — and Why is it Done?

Liquid-liquid extraction (LLE) is a separation technique that exploits the difference in solubility of a compound between two immiscible liquid phases — typically an aqueous phase and an organic solvent phase — to selectively transfer the compound of interest from one phase to the other. The technique is based on the partition coefficient of the compound: its equilibrium distribution between the two phases at a given temperature and pH.

When a mixture of compounds is dissolved in one solvent phase and a second, immiscible solvent is added, each compound distributes itself between the two phases in proportion to its partition coefficient. Compounds with high solubility in the organic phase preferentially partition into the organic layer. Compounds with high solubility in the aqueous phase remain in the water layer. By draining and collecting the two phases separately, the compound of interest is isolated — either enriched in the organic phase (for subsequent evaporation and concentration) or retained in the aqueous phase (with impurities removed into the organic layer).

The practical power of liquid-liquid extraction lies in its simplicity, versatility, and efficiency. Unlike chromatographic separation techniques, LLE requires no stationary phase, no column, and no complex instrumentation — just two immiscible solvents, a separating funnel, and an understanding of the chemistry of the system being separated.

How a Separating Funnel is Used — Step by Step

Understanding the correct technique for using a separating funnel is important for achieving clean, reproducible separations and avoiding the most common practical problems:

Step 1 — Prepare the Funnel

Check that the PTFE stopcock is correctly seated and closed. Place the separating funnel in a ring stand with a ring clamp at an appropriate height for your collection vessel. Verify the stopcock is leak-free by adding a small volume of solvent before loading the main sample.

Step 2 — Add the Phases

Add the sample solution and the extraction solvent through the top of the funnel. The combined volume of both phases should not exceed approximately 75% of the funnel capacity — sufficient headspace is essential for safe mixing. Insert the ground glass stopper and ensure it is secure.

Step 3 — Mix and Vent

Invert the funnel gently and open the stopcock immediately to release any pressure build-up — particularly important when using volatile organic solvents such as diethyl ether or dichloromethane, which can generate significant vapour pressure during mixing. Hold the funnel inverted with one hand on the stopper and one hand on the stopcock body. Swirl and invert gently several times, venting after every one or two inversions. More vigorous shaking increases contact between the phases and improves extraction efficiency — but excessive agitation with certain solvent systems can generate a stable emulsion that is very difficult to break.

Step 4 — Allow Phase Separation

Return the funnel to the upright position in the ring stand and remove the stopper to allow the funnel to breathe. Allow the two phases to separate completely — this typically takes 1–5 minutes depending on the solvent system and the nature of the sample. The denser phase sinks to the bottom and the less dense phase rises to the top. For most organic solvent / water systems, the aqueous phase is denser and sits below the organic layer — but this is reversed for halogenated solvents such as dichloromethane and chloroform, which are denser than water and sink below the aqueous phase.

Step 5 — Separate the Phases

Open the stopcock and drain the lower phase slowly into a collection vessel, watching the phase boundary carefully. Close the stopcock precisely at the moment the interface reaches the stopcock outlet — leaving the minimum volume of lower phase behind while avoiding carry-over of the upper phase. Remove the upper phase by pouring it out through the top opening of the funnel. Repeat the extraction with fresh solvent if multiple extraction steps are required.

Applications of Separating Funnels in Irish Laboratories

Separating funnels are used across a wide range of analytical chemistry, pharmaceutical, and research laboratory applications. The most common in Irish laboratory environments include:

Pharmaceutical Sample Preparation and Purification

Liquid-liquid extraction using separating funnels is a core technique in pharmaceutical analytical sample preparation — used to extract active pharmaceutical ingredients (APIs) or their metabolites from biological matrices such as plasma, urine, or tissue homogenate prior to chromatographic analysis. The selectivity of the extraction can be tuned by adjusting the pH of the aqueous phase to control the ionisation state of the analyte — exploiting the fact that ionised species remain in the aqueous phase while neutral species partition into the organic solvent.

Purification of Organic Synthesis Products

In pharmaceutical research and development and academic organic chemistry, separating funnels are used for workup of synthetic reactions — extracting the desired product from the reaction mixture by partitioning it into an appropriate organic solvent, followed by sequential washes with aqueous base (to remove acidic impurities), aqueous acid (to remove basic impurities), and brine (to remove residual water). This extraction workup is a routine step in virtually every preparative organic chemistry procedure.

Analytical Chemistry Sample Cleanup

Liquid-liquid extraction using separating funnels is used for sample cleanup prior to chromatographic analysis — removing matrix interferences, concentrating trace analytes from large-volume aqueous samples, and transferring analytes into a solvent compatible with the analytical method. Environmental samples, food extracts, and biological fluids are routinely processed by liquid-liquid extraction before HPLC, GC, or spectrophotometric analysis.

Partition Coefficient Determination

The octanol-water partition coefficient (logP) is a fundamental physicochemical parameter in pharmaceutical research — used to predict the absorption, distribution, metabolism, and excretion (ADME) properties of drug candidates. Experimental logP determination is performed using a separating funnel to equilibrate the compound between n-octanol and water phases and measure its concentration in each phase.

Solvent Washing of Organic Extracts

Organic extracts from synthesis reactions or extraction procedures are routinely washed in a separating funnel with aqueous solutions to remove unwanted water-soluble components — including inorganic salts, acids, bases, and polar reagents — before evaporation and product isolation.

Environmental Analysis

Environmental monitoring laboratories use liquid-liquid extraction with separating funnels to extract organic pollutants from water samples prior to analysis by GC-MS or HPLC — a standard approach for the analysis of pesticides, hydrocarbons, and other organic contaminants in wastewater, river water, and environmental matrices.

Advantages of Liquid-Liquid Extraction with a Separating Funnel

  • Simplicity and low equipment cost — LLE with a separating funnel requires no complex instrumentation, no stationary phase, and no specialised consumables beyond the solvents themselves. A separating funnel, a ring stand, and collection vessels are the only equipment needed.
  • High selectivity through pH control — by adjusting the pH of the aqueous phase, the ionisation state of acidic or basic analytes can be controlled, enabling highly selective separation of target compounds from complex mixtures without chromatography.
  • Concentration of dilute analytes — LLE can concentrate trace analytes from large volumes of aqueous sample into small volumes of organic solvent, significantly improving analytical sensitivity without the need for evaporation under vacuum.
  • Versatility across solvent systems — a wide range of organic solvents can be used as the extraction phase, allowing the technique to be optimised for the specific polarity, logP, and stability requirements of the compound being separated.
  • Scalability — separating funnels are available from 50mL to 2000mL, enabling the same technique to be applied from analytical-scale extractions (50–100mL) to preparative-scale isolations (1–2L) without changing the fundamental approach.
  • No adsorptive losses — unlike solid-phase extraction (SPE), LLE does not risk irreversible adsorption of the analyte onto a stationary phase — ensuring complete recovery of the extracted compound in the organic phase.

Limitations and Practical Challenges

  • Emulsion formation — certain sample matrices — particularly those containing proteins, detergents, or finely divided particles — can generate stable emulsions during mixing that are difficult or time-consuming to break. Techniques to resolve emulsions include gentle swirling rather than vigorous shaking, addition of saturated salt solution (salting out), brief centrifugation, or filtration of the emulsion layer.
  • Solvent volatility and safety — many organic solvents used in LLE are flammable and volatile. Careful pressure venting during mixing, working in a well-ventilated fume cupboard, and avoiding open flames are essential safety precautions.
  • Multiple extraction steps — a single extraction step rarely achieves quantitative transfer of the analyte. Multiple extractions with fresh solvent (typically three extractions) are required for high recovery — increasing the time and solvent volume required.
  • Phase identification errors — misidentifying which phase is organic and which is aqueous — particularly with halogenated solvents that are denser than water — is a common source of error. Adding a small volume of water to the lower phase and observing whether it disperses or forms a separate layer is a simple identification test.

PTFE vs Glass Stopcocks — Why PTFE Matters

The stopcock of a separating funnel is its most critical component — and the choice between PTFE and glass stopcocks has significant practical consequences for everyday laboratory use.

Traditional glass stopcocks require the application of stopcock grease — a viscous silicone or hydrocarbon-based lubricant — to maintain an airtight seal and prevent the glass plug from seizing within the glass barrel. Stopcock grease has several practical disadvantages:

  • Grease can be dissolved or washed away by common extraction solvents — particularly halogenated solvents, petroleum ether, and toluene — contaminating the extract
  • Grease must be reapplied regularly and checked before each use
  • Seized glass stopcocks are a common laboratory frustration, particularly when solvents have penetrated the grease film
  • Grease contamination of pharmaceutical extracts can interfere with downstream chromatographic analysis

PTFE stopcocks eliminate all of these issues. PTFE (polytetrafluoroethylene) provides an inherently self-lubricating surface that requires no grease, is chemically resistant to virtually all organic solvents and aqueous reagents used in laboratory LLE, and maintains a reliable seal without the maintenance requirements of greased glass stopcocks. Both the Glassco Squibb shape separating funnels and Glassco pear shape separating funnels available from Varen Scientific are fitted with PTFE stopcocks as standard — making them the appropriate and practical choice for pharmaceutical and analytical laboratory use in Ireland.

Squibb Shape vs Pear Shape — Choosing the Right Separating Funnel

Laboratory separating funnels are available in two principal body shapes — Squibb (cylindrical) and pear (conical/ISO shape) — each with specific advantages for different extraction applications.

Squibb Shape (Cylindrical)

The Squibb separating funnel has a cylindrical body that maximises the usable volume per unit height — providing the greatest capacity for a given funnel size. The cylindrical body is well suited to large-volume preparative extractions where the primary requirement is to hold the largest possible combined volume of the two phases. The Glassco Squibb shape separating funnel with PTFE stopcock is available in capacities from 50mL to 2000mL with NS 19/26 joint on 50–100mL sizes and NS 29/32 on 250–2000mL.

Pear Shape (Conical/ISO)

The pear shape separating funnel has a conical body that narrows progressively toward the stopcock outlet — concentrating the lower phase in a smaller volume near the drainage point. This narrowing makes the phase boundary more visible and easier to identify precisely, and allows the lower phase to drain completely and cleanly through the stopcock with less residual lower-phase volume remaining in the funnel. For analytical-scale extractions where complete and precise phase drainage is important — and where the volume of either phase may be small — the pear shape is the preferred configuration. The Glassco pear shape separating funnel with PTFE stopcock is available in the same 50mL to 2000mL capacity range.

Feature Squibb Shape Pear Shape
Body profileCylindricalConical — narrows to base
Volume per heightMaximum capacityModerate
Phase boundary visibilityGoodExcellent — phases concentrate at narrow base
Lower phase drainageGoodExcellent — complete and precise
Best forLarge-volume preparative extractionAnalytical-scale precise extraction
Available capacities50mL – 2000mL50mL – 2000mL

When Do You Need a Separating Funnel?

In summary, a separating funnel is needed in any of the following laboratory situations:

  • You need to extract an organic compound from an aqueous reaction mixture or biological sample into an organic solvent
  • You need to wash an organic extract with aqueous base, acid, or brine to remove ionic or polar impurities
  • You need to determine the partition coefficient of a compound between an organic and aqueous phase
  • You need to separate an organic product from water-soluble reagents, catalysts, or byproducts following a synthetic reaction
  • You need to clean up an environmental or food sample by removing aqueous matrix interferences before chromatographic analysis
  • You need to concentrate a trace analyte from a large-volume aqueous sample into a small volume of organic solvent for improved analytical sensitivity

Separating Funnels Available in Ireland

Varen Scientific supplies Glassco borosilicate 3.3 separating funnels with PTFE stopcocks to pharmaceutical, analytical, and research laboratories across Ireland. Both Squibb and pear shape configurations are available in capacities from 50mL to 2000mL, supplied from Glassco's European warehouse in the Netherlands for fast delivery across Ireland.

For the full range of Glassco borosilicate laboratory glassware — including laboratory funnels, volumetric flasks, and beakers — visit our laboratory glassware section.

For further technical information on liquid-liquid extraction principles and method development, refer to guidance published by the Health Products Regulatory Authority (HPRA) on pharmaceutical analytical methods. To request a quote or discuss your laboratory glassware requirements, contact our team or use the Request a Quote button on any product page.

Topics Analytical Chemistry Borosilicate Glass Ireland Laboratory Glassware Liquid-Liquid Extraction Pharmaceutical PTFE Stopcock Separating Funnel

Need Laboratory Glassware or Instruments?

Varen Scientific supplies certified laboratory products to pharmaceutical, research, and analytical laboratories across Ireland — with local support and fast EU warehouse delivery.

Request a Quote
Scroll to Top
🔬 Need laboratory consumables? Ireland's trusted B2B supplier is here to help.
Request a Quote +353892514408
Back
Cookie preferences
We use cookies to enhance your browsing experience and analyze our traffic. You can choose not to allow some types of cookies.
Necessary
Enables security and basic functionality.
Required
Analytics
Enables tracking of site performance.
Off
Marketing
Enables ads personalization and tracking.
Off