Processes for the 3D Printing of Hydrodynamic Flow-Focusing Devices

被引:1
作者
Awate, Diwakar M. [1 ]
Holton, Seth [1 ]
Meyer, Katherine [1 ]
Juarez, Jaime J. [1 ,2 ]
机构
[1] Iowa State Univ, Dept Mech Engn, Ames, IA 50011 USA
[2] Iowa State Univ, Ctr Multiphase Flow Res & Educ, Ames, IA 50011 USA
基金
美国国家科学基金会;
关键词
3D printing; flow focusing; millifluidics; MICROFLUIDICS; FABRICATION; CYTOMETERS; SWITCHES; CHANNELS; CELLS; CHIP;
D O I
10.3390/mi14071388
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Flow focusing is an important hydrodynamic technique for cytometric analysis, enabling the rapid study of cellular samples to identify a variety of biological processes. To date, the majority of flow-focusing devices are fabricated using conventional photolithography or flame processing of glass capillaries. This article presents a suite of low-cost, millifluidic, flow-focusing devices that were fabricated using a desktop sterolithgraphy (SLA) 3D printer. The suite of SLA printing strategies consists of a monolithic SLA method and a hybrid molding process. In the monolithic SLA approach, 1.3 mm square millifluidic channels were printed as a single piece. The printed device does not require any post processing, such as bonding or surface polishing for optical access. The hybrid molding approach consists of printing a mold using the SLA 3D printer. The mold is treated to an extended UV exposure and oven baked before using PDMS as the molding material for the channel. To demonstrate the viability of these channels, we performed a series of experiments using several flow-rate ratios to show the range of focusing widths that can be achieved in these devices. The experiments are validated using a numerical model developed in ANSYS.
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页数:13
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[11]   Formation of monodisperse bubbles in a microfluidic flow-focusing device [J].
Garstecki, P ;
Gitlin, I ;
DiLuzio, W ;
Whitesides, GM ;
Kumacheva, E ;
Stone, HA .
APPLIED PHYSICS LETTERS, 2004, 85 (13) :2649-2651
[12]   Evaluation of 3D Printing and Its Potential Impact on Biotechnology and the Chemical Sciences [J].
Gross, Bethany C. ;
Erkal, Jayda L. ;
Lockwood, Sarah Y. ;
Chen, Chengpeng ;
Spence, Dana M. .
ANALYTICAL CHEMISTRY, 2014, 86 (07) :3240-3253
[13]   Can 3D Printing Bring Droplet Microfluidics to Every Lab?-A Systematic Review [J].
Gyimah, Nafisat ;
Scheler, Ott ;
Rang, Toomas ;
Pardy, Tamas .
MICROMACHINES, 2021, 12 (03)
[14]   High-Throughput Printing via Microvascular Multinozzle Arrays [J].
Hansen, Christopher J. ;
Saksena, Rajat ;
Kolesky, David B. ;
Vericella, John J. ;
Kranz, Stephen J. ;
Muldowney, Gregory P. ;
Christensen, Kenneth T. ;
Lewis, Jennifer A. .
ADVANCED MATERIALS, 2013, 25 (01) :96-102
[15]   Femtomole mixer for microsecond kinetic studies of protein folding [J].
Hertzog, DE ;
Michalet, X ;
Jäger, M ;
Kong, XX ;
Santiago, JG ;
Weiss, S ;
Bakajin, O .
ANALYTICAL CHEMISTRY, 2004, 76 (24) :7169-7178
[16]   VOLUME OF FLUID (VOF) METHOD FOR THE DYNAMICS OF FREE BOUNDARIES [J].
HIRT, CW ;
NICHOLS, BD .
JOURNAL OF COMPUTATIONAL PHYSICS, 1981, 39 (01) :201-225
[17]   Microfluidics for flow cytometric analysis of cells and particles [J].
Huh, D ;
Gu, W ;
Kamotani, Y ;
Grotberg, JB ;
Takayama, S .
PHYSIOLOGICAL MEASUREMENT, 2005, 26 (03) :R73-R98
[18]   Use of air-liquid two-phase flow in hydrophobic microfluidic channels for disposable flow cytometers [J].
Huh, D ;
Tung, YC ;
Wei, HH ;
Grotberg, JB ;
Skerlos, SJ ;
Kurabayashi, K ;
Takayama, S .
BIOMEDICAL MICRODEVICES, 2002, 4 (02) :141-149
[19]   Microchannel Fabrication on Glass Materials for Microfluidic Devices [J].
Hwang, Jihong ;
Cho, Young Hak ;
Park, Min Soo ;
Kim, Bo Hyun .
INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING, 2019, 20 (03) :479-495
[20]  
Irwin JL, 2014, ASEE ANNU CONF EXPO