Microfluidic Viscometer Using a Suspending Micromembrane for Measurement of Biosamples
The viscosity of biofluids such as blood and saliva can reflect an individual’s health conditions, and viscosity measurements are therefore considered in health monitoring and disease diagnosis. However, conventional viscometers can only handle a larger liquid volume beyond the quantity that can be...
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doaj-49ed2ca85577454fb78d2cb749a4fd802020-11-25T02:41:59ZengMDPI AGMicromachines2072-666X2020-10-011193493410.3390/mi11100934Microfluidic Viscometer Using a Suspending Micromembrane for Measurement of BiosamplesLelin Liu0Dinglong Hu1Raymond H. W. Lam2Department of Biomedical Engineering, City University of Hong Kong, Hong Kong, ChinaDepartment of Biomedical Engineering, City University of Hong Kong, Hong Kong, ChinaDepartment of Biomedical Engineering, City University of Hong Kong, Hong Kong, ChinaThe viscosity of biofluids such as blood and saliva can reflect an individual’s health conditions, and viscosity measurements are therefore considered in health monitoring and disease diagnosis. However, conventional viscometers can only handle a larger liquid volume beyond the quantity that can be extracted from a person. Though very effective, micro-sensors based on electrokinetic, ultrasonic, or other principles often have strict requirements for the supporting equipment and complicated procedures and signal processing. Sample contamination is always an important issue. In this paper, we report a microfluidic viscometer requiring a small volume of biosamples (<50 µL) and straightforward operation procedures. It is fabricated with low-cost and biocompatible polymeric materials as one-time-use devices, such that contamination is no longer the concern. It contains a suspending micromembrane located along a microchannel. Under a steady driving pressure, the membrane displacement is a function of viscosity of the liquid sample being tested. We derived a simple analytical relation and perform a simulation for converting the membrane displacement to the sample viscosity. We conducted experiments with liquids (water and mineral oil) with defined properties to verify such a relation. We further applied the micro-viscometer to measure bovine blood samples with different hematocrit levels. It can be concluded that the microfluidic viscometer has a high compatibility with a broad range of biomedical applications.https://www.mdpi.com/2072-666X/11/10/934microfluidicviscositysensor |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lelin Liu Dinglong Hu Raymond H. W. Lam |
spellingShingle |
Lelin Liu Dinglong Hu Raymond H. W. Lam Microfluidic Viscometer Using a Suspending Micromembrane for Measurement of Biosamples Micromachines microfluidic viscosity sensor |
author_facet |
Lelin Liu Dinglong Hu Raymond H. W. Lam |
author_sort |
Lelin Liu |
title |
Microfluidic Viscometer Using a Suspending Micromembrane for Measurement of Biosamples |
title_short |
Microfluidic Viscometer Using a Suspending Micromembrane for Measurement of Biosamples |
title_full |
Microfluidic Viscometer Using a Suspending Micromembrane for Measurement of Biosamples |
title_fullStr |
Microfluidic Viscometer Using a Suspending Micromembrane for Measurement of Biosamples |
title_full_unstemmed |
Microfluidic Viscometer Using a Suspending Micromembrane for Measurement of Biosamples |
title_sort |
microfluidic viscometer using a suspending micromembrane for measurement of biosamples |
publisher |
MDPI AG |
series |
Micromachines |
issn |
2072-666X |
publishDate |
2020-10-01 |
description |
The viscosity of biofluids such as blood and saliva can reflect an individual’s health conditions, and viscosity measurements are therefore considered in health monitoring and disease diagnosis. However, conventional viscometers can only handle a larger liquid volume beyond the quantity that can be extracted from a person. Though very effective, micro-sensors based on electrokinetic, ultrasonic, or other principles often have strict requirements for the supporting equipment and complicated procedures and signal processing. Sample contamination is always an important issue. In this paper, we report a microfluidic viscometer requiring a small volume of biosamples (<50 µL) and straightforward operation procedures. It is fabricated with low-cost and biocompatible polymeric materials as one-time-use devices, such that contamination is no longer the concern. It contains a suspending micromembrane located along a microchannel. Under a steady driving pressure, the membrane displacement is a function of viscosity of the liquid sample being tested. We derived a simple analytical relation and perform a simulation for converting the membrane displacement to the sample viscosity. We conducted experiments with liquids (water and mineral oil) with defined properties to verify such a relation. We further applied the micro-viscometer to measure bovine blood samples with different hematocrit levels. It can be concluded that the microfluidic viscometer has a high compatibility with a broad range of biomedical applications. |
topic |
microfluidic viscosity sensor |
url |
https://www.mdpi.com/2072-666X/11/10/934 |
work_keys_str_mv |
AT lelinliu microfluidicviscometerusingasuspendingmicromembraneformeasurementofbiosamples AT dinglonghu microfluidicviscometerusingasuspendingmicromembraneformeasurementofbiosamples AT raymondhwlam microfluidicviscometerusingasuspendingmicromembraneformeasurementofbiosamples |
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