3D-Printed Hydrodynamic Focusing Lab-on-a-Chip Device for Impedance Flow Particle Analysis

被引:5
作者
Desagani, Dayananda [1 ]
Kleiman, Shani [1 ]
Zagardan, Teddy [1 ]
Ben-Yoav, Hadar [1 ]
机构
[1] Ben Gurion Univ Negev, Ilse Katz Inst Nanoscale Sci & Technol, Dept Biomed Engn, Nanobioelectron Lab, IL-8410501 Beer Sheva, Israel
关键词
lab-on-a-chip; 3D printing; point-of-care detection; electrochemical impedance spectroscopy; microfluidics; rapid prototyping; fused filament fabrication; flow cytometry; flow focusing; finite element method modeling; SPECTROSCOPY; ELECTRODES; CYTOMETRY;
D O I
10.3390/chemosensors11050283
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Particles analysis, such as cell counting and differentiation, are widely used for the diagnosis and monitoring of several medical conditions, such as during inflammation. Three-dimensional-printed lab-on-a-chip (LOC) devices, which can utilize one of the cell counting methods, can bring this technology to remote locations through its cost-efficient advantages and easy handling. We present a three-dimensional-printed LOC device with integrated electrodes. To overcome the limited resolution of a 3D printer, we utilized a flow-focusing design. We modeled and simulated the mass transfer and flow dynamics in the LOC by incorporating a flow-focusing design and reached an optimal channel diameter of 0.5 mm, resulting in a flow-focusing distance of <60 mu m. We also used electrochemical impedance spectroscopy to enable the dependence of the electrode-solution interface on the flow-focusing properties. Finally, we highlighted the proof-of-concept detection of microspheres (6 mu m diameter), which model biological cells that flow in the channel, by recording the electrochemical impedance at 10 kHz, thus showing the potential of a future point-of-care (POC) device.
引用
收藏
页数:12
相关论文
共 50 条
[31]   Universal lab-on-a-chip platform for complex, perfused 3D cell cultures [J].
Sonntag, F. ;
Schmieder, F. ;
Stroebel, J. ;
Gruenzner, S. ;
Busek, M. ;
Guenther, K. ;
Steege, T. ;
Polk, C. ;
Klotzbach, U. .
MICROFLUIDICS, BIOMEMS, AND MEDICAL MICROSYSTEMS XIV, 2016, 9705
[32]   Processes for the 3D Printing of Hydrodynamic Flow-Focusing Devices [J].
Awate, Diwakar M. ;
Holton, Seth ;
Meyer, Katherine ;
Juarez, Jaime J. .
MICROMACHINES, 2023, 14 (07)
[33]   MineLoC: A Rapid Production of Lab-on-a-Chip Biosensors Using 3D Printer and the Sandbox Game, Minecraft [J].
Kim, Kyukwang ;
Kim, Hyeongkeun ;
Kim, Seunggyu ;
Jeon, Jessie S. .
SENSORS, 2018, 18 (06)
[34]   3D-Printed Microfluidic Chip for Real-Time Glucose Monitoring in Liquid Analytes [J].
Podunavac, Ivana ;
Djocos, Miroslav ;
Vejin, Marija ;
Birgermajer, Slobodan ;
Pavlovic, Zoran ;
Kojic, Sanja ;
Petrovic, Bojan ;
Radonic, Vasa .
MICROMACHINES, 2023, 14 (03)
[35]   3D Printed Multi-channel Peristaltic Pump with Active Droplet Generator for Lab-on-a-Chip Devices [J].
Hettiarachchi, Samith ;
Melroy, Gehan ;
Mudugamuwa, Amith ;
Perera, Nisal ;
Sampath, Peshan ;
Amarasinghe, Ranjith .
SUSTAINABLE DESIGN AND MANUFACTURING, KES-SDM 2021, 2022, 262 :235-244
[36]   3D Printed electrophoretic lab-on-chip for DNA separation [J].
Adamski, K. ;
Kubicki, W. ;
Walczak, R. .
PROCEEDINGS OF THE 30TH ANNIVERSARY EUROSENSORS CONFERENCE - EUROSENSORS 2016, 2016, 168 :1454-1457
[37]   3D-Printed Calorimetric Flow Sensor [J].
Wolterink, Gerjan ;
Umrani, Ameya ;
Schouten, Martijn ;
Sanders, Remco ;
Krijnen, Gijs .
2020 IEEE SENSORS, 2020,
[38]   Towards a 3D-Printed Millifluidic Device for Investigating Cellular Processes [J].
Engelken, Jared A. ;
Butelmann, Tobias ;
Tribukait-Riemenschneider, Fabian ;
Shastri, V. Prasad .
MICROMACHINES, 2024, 15 (11)
[39]   A lab-on-a-chip device for analysis of amlodipine in biological fluids using peroxyoxalate chemiluminescence system [J].
Al Lawati, Haider A. J. ;
Al-Nadabi, Mira M. ;
Varma, Gouri B. ;
Suliman, Fakhr Eldin O. ;
Al-Abri, Hasnaa .
LUMINESCENCE, 2014, 29 (08) :1148-1153
[40]   Mechanical Characterizations of 3D-printed PLLA/Steel Particle Composites [J].
Mozafari, Hozhabr ;
Dong, Pengfei ;
Hadidi, Haitham ;
Sealy, Michael P. ;
Gu, Linxia .
MATERIALS, 2019, 12 (01)