

A micropipette is a precision laboratory instrument used for transferring small volumes of liquid.
The amount of liquid handled by a micropipette is generally expressed in microliters (µL).
For example:
Common micropipette ranges include:
The actual range depends on the particular micropipette model.
A micropipette can provide highly controlled liquid transfer, but the final result depends on both the instrument and the operator.
Correct pipetting technique helps improve:
This becomes particularly important when working with expensive reagents or very small samples.

Before learning how to use a micropipette, it is useful to understand its main components.
The plunger button is located at the top of the micropipette.
It is operated with the thumb and is used to aspirate and dispense liquid.
Many mechanical micropipettes have two distinct plunger stops:
Understanding these stops is essential for correct pipetting.
For example, on a 10–100 µL micropipette, the volume can be adjusted within the specified range.
Users should never force the volume mechanism beyond its minimum or maximum setting.
The selected volume is shown in the volume display.
Always check the display before beginning the pipetting process.
A simple volume-setting error can result in an incorrect amount of sample or reagent being transferred.
The tip ejector is used to remove the disposable pipette tip after use.
Using the ejector helps prevent unnecessary contact with the used tip.
The tip cone is the lower part of the pipette where the disposable tip is attached.
A proper connection between the pipette and tip is important for consistent aspiration.
The disposable tip is the part that directly contacts the liquid.
Pipette tips are available in different:
The tip should be compatible with the micropipette and suitable for the application.
Many ergonomic micropipettes include a finger hook.
It helps support the instrument during repetitive pipetting and can make operation more comfortable.
The following procedure describes the basic operation of a conventional mechanical air-displacement micropipette.
The first step is to select a micropipette with an appropriate volume range.
Suppose you need to transfer 50 µL.
You should select a pipette whose specified range includes 50 µL, such as a 5–50 µL or another suitable range.
Do not use a 100–1000 µL pipette for a 50 µL measurement.
Always choose a micropipette designed for the volume you need to transfer.
Inspect the pipette before starting.
Check:
If the micropipette has been dropped or damaged, it should be inspected before being used for critical measurements.
Rotate the volume adjustment mechanism until the required volume appears in the display.
For example:
Required volume: 100 µL
Set the micropipette to 100 µL.
Always make sure the volume is within the specified range.
Always read the volume display.
Select a compatible disposable pipette tip.
The tip should fit securely on the micropipette.
For critical applications, consider whether you require:
Tip compatibility can affect pipetting performance.
Insert the tip cone into the disposable tip.
Apply controlled pressure to create a secure connection.
The tip should be firmly attached but should not require excessive force.
An improperly fitted tip can result in:
Hold the micropipette in a comfortable and consistent position.
Press the plunger down until you reach the first stop.
Do this smoothly rather than suddenly.
Immerse the pipette tip into the liquid.
The tip should be immersed sufficiently to allow proper aspiration, but it should not be unnecessarily deep.
Excessive immersion can affect pipetting consistency and may increase the possibility of liquid contamination on the outside of the tip.
With the plunger pressed to the first stop, place the tip into the liquid.
Slowly release the plunger.
As the plunger moves upward, liquid is drawn into the tip.
Release the plunger smoothly and at a controlled speed.
Do not suddenly release the plunger.
Rapid aspiration can cause:
After aspiration, allow a short stabilization period before removing the tip from the liquid.
This can help the liquid settle within the tip.
The appropriate waiting time can depend on the liquid and the manufacturer’s recommended technique.
Withdraw the tip carefully.
Avoid touching the tip against the sides of the container unnecessarily.
If liquid is present on the outside of the tip, follow the appropriate laboratory procedure for handling it.
Move the micropipette to the destination container.
The receiving vessel could be:
Position the tip appropriately before dispensing.
Press the plunger smoothly.
For a standard air-displacement pipette, press to the first stop to deliver the selected volume.
Then continue to the second stop when appropriate to expel remaining liquid from the tip.
Avoid sudden or excessively forceful dispensing.
After dispensing, carefully withdraw the tip from the receiving vessel.
Avoid touching the tip against the receiving container unnecessarily.
Press the tip ejector button.
The disposable tip will be released.
Dispose of the used tip according to the laboratory’s waste-management procedure.
The first stop is the initial plunger position used during standard aspiration and dispensing.
For aspiration:
For dispensing:
The second stop is the additional plunger position used to expel the remaining liquid from the tip during a normal blow-out dispensing technique.
It is important to understand the plunger positions rather than simply pressing the button fully every time.
Correct technique helps improve consistency.
Proper handling is important, especially during repetitive pipetting.
A typical comfortable technique is:
An ergonomic micropipette can help make repetitive laboratory work more comfortable.
Good pipetting is a combination of suitable equipment and consistent technique.
Choose a pipette that is designed for the required volume.
Use a tip that fits securely and is suitable for the application.
Controlled aspiration helps reduce bubbles and inconsistent liquid uptake.
Avoid sudden plunger movements.
Use a similar immersion depth for repeated pipetting operations.
Especially during aspiration, maintain a consistent orientation.
Air bubbles can affect the amount of liquid transferred.
Contamination can affect performance.
Critical applications require appropriate calibration and performance verification.
Using an unsuitable volume range can compromise results.
Choose a pipette whose specified operating range includes the required volume.
The user may accidentally select 100 µL instead of 10 µL or another required volume.
Always check the volume display before aspiration.
Rapid operation can create bubbles and inconsistent aspiration.
Use smooth, controlled movement.
Too little or too much immersion can affect liquid uptake.
Use an appropriate and consistent immersion depth.
A loose tip may allow air leakage.
Make sure the tip is properly seated.
Reusing tips can cause contamination and compromise results.
Use a fresh tip when required by the procedure.
Turning the adjustment mechanism beyond the specified range can damage the instrument.
Operate only within the manufacturer’s specified volume range.
A pipette that has not been properly checked may not perform as expected.
Follow an appropriate calibration and verification schedule.
Air bubbles are a common problem during aspiration.
Possible causes include:
To reduce bubbles:
If a significant bubble remains and could affect the measurement, repeat the pipetting operation according to your laboratory procedure.
Small-volume pipetting requires particular care.
When working with volumes such as 1 µL, 5 µL, or 10 µL:
The smaller the volume, the more important proper technique becomes.
Pre-wetting involves aspirating and dispensing the same liquid one or more times before the actual measurement.
Pre-wetting may help improve consistency for some applications, particularly when working with:
It should be used when appropriate for the specific application and pipette.
Viscous liquids do not behave like water.
Examples may include:
For viscous liquids, a slower aspiration and dispensing speed may be appropriate.
Specialized pipetting techniques or positive-displacement systems may be preferred for certain applications.
Volatile liquids can evaporate quickly.
When working with volatile liquids:
Always follow the laboratory’s chemical-handling SOP and the applicable safety information for the liquid.
Calibration is an important aspect of maintaining reliable liquid handling.
A micropipette may require periodic calibration and performance verification depending on:
Calibration can help determine whether the pipette is operating within the required performance limits.
Calibration can help laboratories:
For critical laboratory applications, calibration documentation can be particularly important.
The correct calibration interval depends on the laboratory.
A pipette used for highly critical procedures may require more frequent checks than one used for routine non-critical work.
A micropipette should also be checked if:
Proper maintenance can help extend the working life of a micropipette.
Keep the outer surface free from contamination.
Look for damage, cracks, or contamination.
The plunger should operate smoothly.
Ensure the ejector functions correctly.
Any unexpected leakage should be investigated.
Do not disassemble, lubricate, clean, or sterilize internal components unless permitted by the manufacturer’s instructions.
Some micropipettes or specific components are designed to be autoclavable.
However, not every micropipette and not every component can be autoclaved.
Before autoclaving, check the product’s documentation.
Where the manufacturer permits autoclaving, follow the specified temperature, pressure, time, drying, and cooling procedures.
Correct storage helps protect the instrument.
When not in use:
Micropipettes are laboratory instruments and should be used according to laboratory safety procedures.
Always:
A single-channel micropipette contains one liquid-handling channel.
It is suitable for:
Single-channel pipettes are among the most versatile laboratory liquid-handling instruments.
An 8-channel micropipette contains eight channels and can transfer liquid into multiple wells simultaneously.
It is particularly useful for microplate applications.
Advantages include:
A 12-channel micropipette provides twelve pipetting channels.
It can be useful for 12-column or compatible microplate workflows.
Applications can include:
A fixed-volume micropipette is designed for a specific predetermined volume.
For example:
100 µL Fixed Volume Micropipette
It is particularly convenient when the same volume is repeatedly required.
A variable-volume micropipette allows the user to select different volumes within its specified range.
For example:
10–100 µL Variable Volume Micropipette
It provides greater flexibility for laboratories handling different liquid volumes.
Air-displacement micropipettes are commonly used for routine aqueous liquid handling.
They work by moving a piston and creating an air cushion between the piston and the liquid.
They are suitable for many general laboratory applications.
However, liquids with unusual viscosity, volatility, temperature, or other physical properties may require specialized techniques or pipette systems.
Positive-displacement systems operate differently because the piston interacts directly with the liquid through the tip or capillary system.
They can be useful for certain:
The appropriate technology should be selected according to the liquid and application.
The tip is a critical component of the liquid-handling system.
A pipette tip should:
Different laboratories may use standard, sterile, filter, or low-retention tips depending on the application.
Filter tips contain a barrier designed to reduce the movement of aerosols or contaminants toward the pipette.
They can be useful in applications where contamination control is important, such as:
Sterile pipette tips are commonly used when sterility is important.
Examples include:
The tips should be handled carefully to maintain their sterile condition.
Micropipettes are essential in scientific research.
Applications include:
Researchers frequently work with small sample volumes, making reliable liquid handling important.
Diagnostic laboratories use micropipettes for:
Correct pipetting technique and contamination control are particularly important in diagnostic workflows.
Pharmaceutical laboratories use liquid-handling equipment for:
The appropriate pipette should be selected according to the procedure and volume requirement.
Biotechnology laboratories frequently handle very small quantities of:
Micropipettes are therefore essential equipment for biotechnology workflows.
Micropipettes are increasingly used in:
Students should be trained in:
Proper training helps establish good laboratory habits.
There is no single micropipette that is best for every laboratory.
The right choice depends on your requirements.
Consider:
What is the smallest and largest volume you need to transfer?
Do you need one fixed volume or multiple volume settings?
Will you be working with individual samples or microplates?
Are compatible tips easily available?
Are you working with water-like solutions, viscous liquids, volatile chemicals, biological samples, or other materials?
Do you require sterile or filter tips?
Is sterilization required?
Will the pipette be used repeatedly throughout the day?
What level of calibration and verification is required?
What warranty and service support does the supplier provide?
These two terms are often confused.
Accuracy refers to how close the measured or delivered volume is to the intended volume.
Precision refers to how consistently repeated measurements agree with one another.
A pipette can be precise but inaccurate, or accurate but insufficiently precise.
For reliable laboratory work, both are important.
To improve consistency:
When purchasing a micropipette in India, laboratories and dealers may compare several factors.
Important considerations include:
A low purchase price should not be the only consideration. The total value of the instrument should also include reliability, support, consumable availability, and suitability for the intended application.
Uma Scientific provides laboratory scientific equipment and liquid-handling solutions for laboratories, dealers, distributors, research organizations, educational institutions, diagnostic centers, pharmaceutical companies, and other scientific customers.
Customers looking for laboratory equipment may require products in cities such as:
Delhi, Mumbai, Bengaluru, Hyderabad, Chennai, Kolkata, Pune, Ahmedabad, Jaipur, Lucknow, Kanpur, Noida, Gurugram, Ghaziabad, Agra, Varanasi, Prayagraj, Chandigarh, Indore, Bhopal, Patna, Ranchi, Bhubaneswar, Nagpur, Surat, Vadodara, Rajkot, Kochi, Coimbatore, Madurai, Mysuru, Visakhapatnam, Vijayawada, Guwahati, Raipur, Dehradun, Meerut, Bareilly, Gorakhpur, Ludhiana, Amritsar and other cities across India.
Uma Scientific supports laboratory equipment requirements for customers across India.
Businesses and laboratory equipment distributors may also require OEM or private-label micropipettes.
OEM solutions can be useful for companies that want to market products under their own brand.
Depending on the product and order requirements, OEM programs may include:
For businesses entering the laboratory liquid-handling market, OEM manufacturing can provide an opportunity to develop a customized product range.
Uma Scientific focuses on laboratory scientific equipment and liquid-handling products.
The company provides solutions for:
Micropipette options can include:
Customers can select products according to their application and volume requirements.
Set the required volume, attach a compatible tip, press the plunger to the first stop, aspirate the liquid slowly, move to the receiving vessel, dispense the liquid, use the second stop when appropriate, and eject the used tip.
The first stop is used for controlled aspiration and the initial stage of dispensing.
The second stop is used to expel remaining liquid from the tip during the blow-out stage of dispensing.
Possible causes include rapid aspiration, incorrect tip immersion, poor tip attachment, or unsuitable technique.
No. Use tips compatible with the micropipette and appropriate for the application.
Disposable tips should generally be replaced when reuse could cause contamination or affect the measurement.
Operating beyond the specified range can compromise performance and may damage the instrument. Always remain within the manufacturer’s stated range.
The appropriate interval depends on laboratory use, application criticality, quality requirements, manufacturer recommendations, and internal SOPs.
Some models and components can be autoclaved. Always verify compatibility and follow the manufacturer’s instructions.
Use a micropipette whose specified range includes 100 µL, such as a suitable 10–100 µL or 20–200 µL model, depending on the application.
A pipette designed for a range including 1000 µL, such as a 100–1000 µL model, can be suitable.
☑ Select the correct micropipette
☑ Check the volume range
☑ Inspect the instrument
☑ Set the required volume
☑ Select a compatible tip
☑ Attach the tip properly
☑ Press to the first stop
☑ Immerse the tip correctly
☑ Release the plunger slowly
☑ Check for air bubbles
☑ Position the receiving vessel correctly
☑ Press the plunger smoothly
☑ Use the second stop when appropriate
☑ Avoid unnecessary splashing
☑ Eject the used tip
☑ Dispose of it correctly
☑ Clean the instrument when required
☑ Store the pipette properly
Learning how to use a micropipette correctly is essential for accurate and consistent laboratory liquid handling. The basic operation may appear straightforward, but careful attention to volume selection, tip compatibility, aspiration speed, dispensing technique, and equipment maintenance can make a significant difference in laboratory results.
The basic procedure can be remembered as:
Select → Set Volume → Attach Tip → First Stop → Aspirate → Move → Dispense → Second Stop → Eject Tip
For routine work, laboratories should select a micropipette that matches the required volume and application. For specialized applications involving volatile or viscous liquids, the laboratory may need specialized pipetting techniques or equipment.
Regular cleaning, appropriate storage, calibration, performance verification, and correct tip selection are also important for maintaining reliable liquid handling.
Whether you are working in a research laboratory, diagnostic laboratory, pharmaceutical company, biotechnology laboratory, hospital, university, medical college, pathology laboratory, food-testing laboratory, industrial laboratory, or educational institution, understanding correct micropipette technique can help improve laboratory efficiency and reproducibility.
Uma Scientific provides laboratory scientific equipment and liquid-handling solutions for customers across India, including micropipettes, pipette tips, and related laboratory products.
Website: umascientific.com
Email: sales.umascientific@gmail.com
Location: Lucknow, Uttar Pradesh, India
.