3D printed high density, reversible, chip-to-chip microfluidic interconnects.

Our latest developments in miniaturizing 3D printed microfluidics [Gong et al., Lab Chip, 2016, 16, 2450; Gong et al., Lab Chip, 2017, 17, 2899] offer the opportunity to fabricate highly integrated chips that measure only a few mm on a side. For such small chips, an interconnection method is needed to provide the necessary world-to-chip reagent and pneumatic connections. In this paper, we introduce simple integrated microgaskets (SIMs) and controlled-compression integrated microgaskets (CCIMs) to connect a small device chip to a larger interface chip that implements world-to-chip connections. SIMs or CCIMs are directly 3D printed as part of the device chip, and therefore no additional materials or components are required to make the connection to the larger 3D printed interface chip. We demonstrate 121 chip-to-chip interconnections in an 11 × 11 array for both SIMs and CCIMs with an areal density of 53 interconnections per mm2 and show that they withstand fluid pressures of 50 psi. We further demonstrate their reusability by testing the devices 100 times without seal failure. Scaling experiments show that 20 × 20 interconnection arrays are feasible and that the CCIM areal density can be increased to 88 interconnections per mm2. We then show the utility of spatially distributed discrete CCIMs by using an interconnection chip with 28 chip-to-world interconnects to test 45 3D printed valves in a 9 × 5 array. Each valve is only 300 μm in diameter (the smallest yet reported for 3D printed valves). Every row of 5 valves is tested to at least 10 000 actuations, with one row tested to 1 000 000 actuations. In all cases, there is no sign of valve failure, and the CCIM interconnections prove an effective means of using a single interface chip to test a series of valve array chips.

[1]  Emmanuel Delamarche,et al.  Lab-on-a-chip devices , 2015 .

[2]  Ian Papautsky,et al.  Re-usable quick-release interconnect for characterization of microfluidic systems , 2006 .

[3]  Ryan R. Anderson,et al.  Microfluidic Valves Made From Polymerized Polyethylene Glycol Diacrylate. , 2014, Sensors and actuators. B, Chemical.

[4]  Gregory P Nordin,et al.  High density 3D printed microfluidic valves, pumps, and multiplexers. , 2016, Lab on a chip.

[5]  Elisabeth Wilhelm,et al.  Connecting microfluidic chips using a chemically inert, reversible, multichannel chip-to-world-interface. , 2013, Lab on a chip.

[6]  Uwe Tangen,et al.  General-Purpose, Parallel and Reversible Microfluidic Interconnects , 2015, IEEE Transactions on Components, Packaging and Manufacturing Technology.

[7]  A. Woolley,et al.  Custom 3D printer and resin for 18 μm × 20 μm microfluidic flow channels. , 2017, Lab on a chip.

[8]  Michael J. Beauchamp,et al.  Optical Approach to Resin Formulation for 3D Printed Microfluidics. , 2015, RSC advances.

[9]  Ellis Meng,et al.  Reusable, adhesiveless and arrayed in-plane microfluidic interconnects , 2011 .

[10]  Martin Dufva,et al.  Interconnection blocks: a method for providing reusable, rapid, multiple, aligned and planar microfluidic interconnections , 2009 .

[11]  Tingrui Pan,et al.  Fit-to-Flow (F2F) interconnects: universal reversible adhesive-free microfluidic adaptors for lab-on-a-chip systems. , 2011, Lab on a chip.

[12]  Yu-Chong Tai,et al.  Modular microfluidic interconnects using photodefinable silicone microgaskets and MEMS O-rings , 2008 .

[13]  A. Pfreundt,et al.  An easy-to-use microfluidic interconnection system to create quick and reversibly interfaced simple microfluidic devices , 2015 .

[14]  Songjian Zhao,et al.  A multifunctional, plug-and-play and low-cost microfluidic connector system based on electronics standard , 2015 .

[15]  A. Folch,et al.  Modular microfluidic systems using reversibly attached PDMS fluid control modules , 2013 .

[16]  Anne L Plant,et al.  A vacuum manifold for rapid world-to-chip connectivity of complex PDMS microdevices. , 2009, Lab on a chip.

[17]  A. Woolley,et al.  3D printed microfluidic devices with integrated valves. , 2015, Biomicrofluidics.