Rapid assembly of multilayer microfluidic structures via 3D-printed transfer molding and bonding

被引:81
作者
Glick, Casey C. [1 ,2 ]
Srimongkol, Mitchell T. [2 ]
Schwartz, Aaron J. [2 ]
Zhuang, William S. [2 ]
Lin, Joseph C. [2 ]
Warren, Roseanne H. [2 ,3 ]
Tekell, Dennis R. [2 ]
Satamalee, Panitan A. [2 ]
Lin, Liwei [2 ]
机构
[1] Univ Calif Berkeley, Dept Phys, Berkeley, CA 94720 USA
[2] Univ Calif Berkeley, Dept Mech Engn, Berkeley, CA 94720 USA
[3] Univ Utah, Dept Mech Engn, Salt Lake City, UT 84112 USA
来源
MICROSYSTEMS & NANOENGINEERING | 2016年 / 2卷
关键词
3D printing; microfluidics; PDMS; ROOM-TEMPERATURE; SOFT LITHOGRAPHY; FABRICATION; DEVICES; CHIP; VALVES; INTEGRATION; COMPONENTS; CIRCUITRY;
D O I
10.1038/micronano.2016.63
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A critical feature of state-of-the-art microfluidic technologies is the ability to fabricate multilayer structures without relying on the expensive equipment and facilities required by soft lithography-defined processes. Here, three-dimensional (3D) printed polymer molds are used to construct multilayer poly(dimethylsiloxane) (PDMS) devices by employing unique molding, bonding, alignment, and rapid assembly processes. Specifically, a novel single-layer, two-sided molding method is developed to realize two channel levels, non-planar membranes/valves, vertical interconnects (vias) between channel levels, and integrated inlet/outlet ports for fast linkages to external fluidic systems. As a demonstration, a single-layer membrane microvalve is constructed and tested by applying various gate pressures under parametric variation of source pressure, illustrating a high degree of flow rate control. In addition, multilayer structures are fabricated through an intralayer bonding procedure that uses custom 3D-printed stamps to selectively apply uncured liquid PDMS adhesive only to bonding interfaces without clogging fluidic channels. Using integrated alignment marks to accurately position both stamps and individual layers, this technique is demonstrated by rapidly assembling a six-layer microfluidic device. By combining the versatility of 3D printing while retaining the favorable mechanical and biological properties of PDMS, this work can potentially open up a new class of manufacturing techniques for multilayer microfluidic systems.
引用
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页数:9
相关论文
共 75 条
  • [1] 3D Systems, 2012, VISIJET S100 S300 SU
  • [2] 3D Systems, 2009, VISIJET EX 200 PLAST
  • [3] Abdelgawad M, 2011, LAB CHIP, V11, P545, DOI [10.1039/c0lc00093k, 10.1039/c01c00093k]
  • [4] Altan T., 1993, CIRP Annals - Manufacturing Technology, V42, P707, DOI DOI 10.1016/S0007-8506(07)62533-5
  • [5] 3D-printed microfluidic devices
    Amin, Reza
    Knowlton, Stephanie
    Hart, Alexander
    Yenilmez, Bekir
    Ghaderinezhad, Fariba
    Katebifar, Sara
    Messina, Michael
    Khademhosseini, Ali
    Tasoglu, Savas
    [J]. BIOFABRICATION, 2016, 8 (02)
  • [6] [Anonymous], 2009, ProJetHD 3000 Technical Specifications
  • [7] 3D-Printed Microfluidics
    Au, Anthony K.
    Huynh, Wilson
    Horowitz, Lisa F.
    Folch, Albert
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2016, 55 (12) : 3862 - 3881
  • [8] 3D-printed microfluidic automation
    Au, Anthony K.
    Bhattacharjee, Nirveek
    Horowitz, Lisa F.
    Chang, Tim C.
    Folch, Albert
    [J]. LAB ON A CHIP, 2015, 15 (08) : 1934 - 1941
  • [9] Discrete elements for 3D microfluidics
    Bhargava, Krisna C.
    Thompson, Bryant
    Malmstadt, Noah
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (42) : 15013 - 15018
  • [10] The upcoming 3D-printing revolution in microfluidics
    Bhattacharjee, Nirveek
    Urrios, Arturo
    Kanga, Shawn
    Folch, Albert
    [J]. LAB ON A CHIP, 2016, 16 (10) : 1720 - 1742