Hydrophilic modification of SLA 3D printed droplet generators by photochemical grafting

被引:23
作者
Bacha, Tristan W. [1 ]
Manuguerra, Dylan C. [1 ]
Marano, Robert A. [1 ]
Stanzione, Joseph F., III [1 ]
机构
[1] Rowan Univ, Dept Chem Engn, 201 Mullica Hill Rd, Glassboro, NJ 08028 USA
关键词
MODULAR MICROFLUIDIC DEVICE; SURFACE MODIFICATION; FLOW; BENZOPHENONE; POLYETHYLENE; FABRICATION; SYSTEMS; DESIGN; ROBUST; WATER;
D O I
10.1039/d1ra03057d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Few droplet generators manufactured using desktop stereolithography 3D printers have been reported in the literature. Moreover, 3D printed microfluidic chips are typically hydrophobic, limiting their application to water in oil droplets. Herein, we present designs for concentric and planar 3D printed microfluidic devices suitable for making polymeric microparticles using an off-the-shelf commercial stereolithography printer and resin. The devices consist of a microscope slide, binder clips, and printed components. Channels were modified by an ultraviolet grafting of methacrylic acid to the surface of chips, yielding a hydrophilic coating without modification to the bulk polymer. The water contact angle decreased from 97.0 degrees to 25.4 degrees after grafting. The presence of the coating was confirmed by microscopy and spectroscopy techniques. Polystyrene microparticles in the <100 mu m size range were generated with varying molecular weights using the described microfluidic chips. Our work provides a facile method to construct droplet generators from commercial stereolithography printers and resins, and a rapid surface modification technique that has been under-utilized in 3D printed microfluidics. A wide range of microfluidic devices for other applications can be engineered using the methods described.
引用
收藏
页码:21745 / 21753
页数:9
相关论文
共 43 条
[1]   Photoreactive coating for high-contrast spatial patterning of microfluidic device wettability [J].
Abate, Adam R. ;
Krummel, Amber T. ;
Lee, Daeyeon ;
Marquez, Manuel ;
Holtze, Christian ;
Weitz, David A. .
LAB ON A CHIP, 2008, 8 (12) :2157-2160
[2]   The upcoming 3D-printing revolution in microfluidics [J].
Bhattacharjee, Nirveek ;
Urrios, Arturo ;
Kanga, Shawn ;
Folch, Albert .
LAB ON A CHIP, 2016, 16 (10) :1720-1742
[3]  
Brandhoff L., 2015, P SPIE, V9518
[4]   Beyond PDMS: off-stoichiometry thiol-ene (OSTE) based soft lithography for rapid prototyping of microfluidic devices [J].
Carlborg, Carl Fredrik ;
Haraldsson, Tommy ;
Oberg, Kim ;
Malkoch, Michael ;
van der Wijngaart, Wouter .
LAB ON A CHIP, 2011, 11 (18) :3136-3147
[5]   Morphology design and control of polymer particles by regulating the droplet flowing mode in microfluidic chips [J].
Chen, Rui ;
Chen, Xiang ;
Jin, Xin ;
Zhu, Xinyuan .
POLYMER CHEMISTRY, 2017, 8 (19) :2953-2958
[6]   High-Throughput Generation of Emulsions and Microgels in Parallelized Microfluidic Drop-Makers Prepared by Rapid Prototyping [J].
Femmer, Tim ;
Jans, Alexander ;
Eswein, Rudi ;
Anwar, Naveed ;
Moeller, Martin ;
Wessling, Matthias ;
Kuehne, Alexander J. C. .
ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (23) :12635-12638
[7]   Custom 3D printer and resin for 18 μm x 20 μm microfluidic flow channels [J].
Gong, Hua ;
Bickham, Bryce P. ;
Woolley, Adam T. ;
Nordin, Gregory P. .
LAB ON A CHIP, 2017, 17 (17) :2899-2909
[8]   Fabrication and Functionalization of 3D Printed Polydimethylsiloxane-Based Microfluidic Devices Obtained through Digital Light Processing [J].
Gonzalez, Gustavo ;
Chiappone, Annalisa ;
Dietliker, Kurt ;
Pirri, Candido Fabrizio ;
Roppolo, Ignazio .
ADVANCED MATERIALS TECHNOLOGIES, 2020, 5 (09)
[9]   Micromilling: a method for ultra-rapid prototyping of plastic microfluidic devices [J].
Guckenberger, David J. ;
de Groot, Theodorus E. ;
Wan, Alwin M. D. ;
Beebe, David J. ;
Young, Edmond W. K. .
LAB ON A CHIP, 2015, 15 (11) :2364-2378
[10]   Benchtop fabrication of microfluidic systems based on curable polymers with improved solvent compatibility [J].
Hashimoto, Michinao ;
Langer, Robert ;
Kohane, Daniel S. .
LAB ON A CHIP, 2013, 13 (02) :252-259