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Updated: Aug 31, 2025

Aseptic Laboratory Techniques: Volume Transfers with Serological Pipettes and Micropipettors
Published on: May 31, 2012
Contamination and carryover free handling of complex fluids using lubricant-infused pipette tips
Amid Shakeri1, Hanie Yousefi2,3, Noor Abu Jarad4
1Department of Mechanical Engineering, McMaster University, 1280 Main Street West, Hamilton, ON, L8S 4L7, Canada. shakeria@mcmaster.ca.
Abstract:
Cross-contamination of biological samples during handling and preparation, is a major issue in laboratory setups, leading to false-positives or false-negatives. Sample carryover residue in pipette tips contributes greatly to this issue. Most pipette tips on the market are manufactured with hydrophobic polymers that are able to repel high surface tension liquids, yet they lack in performance when low surface tension liquids and viscous fluids are involved. Moreover, hydrophobicity of pipette tips can result in hydrophobic adsorption of biomolecules, causing inaccuracies and loss in precision during pipetting. Here we propose the use of lubricant-infused surface (LIS) technology to achieve omniphobic properties in pipette tips. Using a versatile and simple design, the inner lumen of commercially available pipette tips was coated with a fluorosilane (FS) layer using chemical vapor deposition (CVD). The presence of FS groups on the tips is confirmed by x-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectroscopy (FTIR) tests. After lubrication of the tips through a fluorinated lubricant, the omniphobicity and repellent behaviour of the tips drastically enhanced which are revealed via static and hysteresis contact angle measurements. The repellency of the lubricant-infused pipette tips against physical adsorption is investigated through pipetting a food coloring dye as well as human blood samples and are compared to the untreated tips. The results show significantly less amount carryover residue when the lubricant-infused tips are utilized compared to commercially available ones. We also demonstrate the lubricant-infused tips reduce bacteria contamination of the inner lumen by 3 to 6-log (over 99%, depending on the tip size) after pipetting up and down the bacteria solution.
Insights
Lubricant-infused pipette tips prevent sample contamination and carryover. This novel omniphobic surface technology significantly reduces residue and bacterial contamination in laboratory settings.
Area of Science:
- Biomaterials Science
- Laboratory Technology
- Surface Chemistry
Background:
- Cross-contamination in biological sample handling is a significant laboratory issue.
- Standard pipette tips struggle with low surface tension liquids and viscous fluids, leading to inaccuracies.
- Hydrophobic surfaces on pipette tips can cause biomolecule adsorption, reducing precision.
Purpose of the Study:
- To develop omniphobic pipette tips using lubricant-infused surface (LIS) technology.
- To enhance pipette tip performance in reducing sample carryover and contamination.
- To improve accuracy and precision in liquid handling applications.
Main Methods:
- Coating pipette tips with a fluorosilane (FS) layer via chemical vapor deposition (CVD).
- Infusing the FS-coated tips with a fluorinated lubricant to create an omniphobic surface.
- Characterizing the surface properties using X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectroscopy (FTIR).
- Evaluating liquid repellency through contact angle measurements and assessing residue reduction with dyes and blood samples.
Main Results:
- The lubricant-infused pipette tips exhibited significantly enhanced omniphobicity and liquid repellency.
- A substantial reduction in sample carryover residue was observed compared to untreated tips.
- A 3 to 6-log reduction (over 99%) in bacterial contamination was achieved after pipetting bacterial solutions.
Conclusions:
- LIS technology effectively creates omniphobic pipette tips, overcoming limitations of standard hydrophobic tips.
- These enhanced pipette tips minimize sample carryover and reduce bacterial contamination, improving laboratory accuracy and safety.
- The developed technology offers a promising solution for critical liquid handling procedures in research and diagnostics.
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