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An open-source programmable smart pipette for portable cell separation and counting

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Abstract

Microfluidics offers great potential for biomedical applications, but the complexity, inconvenience, and low pumping equipment accessibility of operating microfluidic devices have limited their widespread use. Here we describe an open-source, programmable smart (OS) pipette as an easy-to-use, simple, handheld microfluidic pump that overcomes the major limitations of previous commercial- or research-level pumps for microfluidics. The OS pipette pumps fluid into a microfluidic device by precisely controlling the position of the plunger of a positive-displacement micropipette with stepper motor control. The intuitive pumping mechanism of the OS pipette enables the novel features of simple fabrication, straightforward device operation, and precise, predictable, and programmable flow-rate generation as an open-source pumping tool. Controlling the OS pipette using an open-source microcontroller board not only allows straightforward generation of constant flow rates with simple source code commands, but also permits varying flow rates to be programmed (including stepwise increase and decrease of the flow rate over time, and flow-rate pulse generation). We successfully validate the OS pipette's capabilities for portable microfluidic cell separation and counting. The OS pipette has promise as a rapidly evolving and potentially transformative pumping tool that freely allows unrestricted use, distribution, reproduction, and modification even by non-expert users, and further enables diverse usages, even beyond microfluidics.

Bibliographic details

Published
2019-01-01
Journal/source
RSC Advances
Publisher
Royal Society of Chemistry (RSC)
DOI
10.1039/c9ra08368e
Type
journal-article
Language
en
Volume / issue
9 / 71
Pages
41877-41885
ISSN
2046-2069

Access and metrics

Open access
Yes
OA status
gold
License
cc-by-nc
Version
publishedVersion
Cited by
9
References
47
Retracted
No

Authors and affiliations

  1. Eunjung LeeYong In University · Government of the Republic of Korea · Kyung Hee University
  2. Byeongyeon KimGovernment of the Republic of Korea · The Seoul Institute · Hanyang University
  3. Sungyoung ChoiCorresponding authorGovernment of the Republic of Korea · The Seoul Institute · Hanyang University

Topics and keywords

Microfluidic and Bio-sensing TechnologiesMicrofluidic and Capillary Electrophoresis ApplicationsElectrowetting and Microfluidic TechnologiesPipetteMicrofluidicsComputer sciencePositive displacement meterVolumetric flow rateNanotechnologyComputer hardwareMaterials scienceChemistryEngineeringMechanical engineeringPhysics

Funding

  • National Research Foundation of Korea · 2016R1A5A1010148
  • National Research Foundation of Korea · 2019R1H1A1079944