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Engineering a vacuum-actuated peristaltic micropump with novel microchannel design to rapidly separate blood plasma with extremely low hemolysis.

Authors :
Vo, Tuan Ngoc Anh
Chen, Pin-Chuan
Chen, Pai-Shan
Jair, Yung-Cheng
Wu, Yi-Hsin
Source :
Sensors & Actuators A: Physical. Dec2024, Vol. 379, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

A need exists for scalable, automated lab-on-chip systems to separate blood plasma for medical diagnostics. In this study, a vacuum-actuated peristaltic micropump (VPM) was developed, incorporating with the inertial microfluidic technique for the separation and collection of blood plasma from diluted blood. The features of the micropump were investigated by varying parameters such as frequency, vacuum pressure, and the number of microchannels. The highest achievable flow rate was found to be 832 µL/min. Subsequently, to minimize the occurrence of red blood cell rupture during the separation process and significantly reduce hemolysis, the configuration of the vertical wall inside the microchannel was modified to an inclined wall. This improvement was validated through experiments using high-speed cameras and fluorescent particles. Blood plasma separation was achieved with high efficiency (98.5 %), rapidity (<1 min), automation, and minimal whole blood usage (5 µL). Importantly, the vacuum actuator with an inclined wall obstruction design demonstrated very low hemolysis (less than 2 %). [Display omitted] • An integrated microfluidics for hemolysis-free separating RBCs from diluted blood. • Separation efficiency 98.5 %, automation, whole blood of 5 µL, and less than 1 min. • This integrated microfluidics with inclined wall delivers hemolysis less than 2 %. • A flow rate of 832 µL/min was generated by VPM while suppressing backflow. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09244247
Volume :
379
Database :
Academic Search Index
Journal :
Sensors & Actuators A: Physical
Publication Type :
Academic Journal
Accession number :
180821932
Full Text :
https://doi.org/10.1016/j.sna.2024.115845