Inkjet printed polyethylene glycol as a fugitive ink for the fabrication of flexible microfluidic systems

被引:18
作者
Alfadhel, Ahmed [1 ]
Ouyang, Jing [1 ]
Mahajan, Chaitanya G. [2 ]
Forouzandeh, Farzad [1 ]
Cormier, Denis [2 ]
Borkholder, David A. [1 ]
机构
[1] Rochester Inst Technol, Microsyst Engn, Rochester, NY 14623 USA
[2] Rochester Inst Technol, Ind & Syst Engn, Rochester, NY 14623 USA
基金
美国国家卫生研究院;
关键词
Inkjet printing; Polyethylene glycol; Microfluidic; Microsystems; Flexible electronics; CHIP;
D O I
10.1016/j.matdes.2018.04.013
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper demonstrates a novel and simple processing technique for the realization of scalable and flexible microfluidicmicrosystems by inkjet-printing polyethylene-glycol (PEG) as a sacrificial template, followed by embedding in a structural layer (e.g. soft elastomers). The printing technology allows production of an array of PEG droplets simultaneously, reducing cost and manufacturing time. The PEG can be removed through heating above its phase-change temperature after the formation of the structural layer, with hydraulic flow removing the material. The developed technique allows easy modulation of the shape and dimensions of the pattern with the ability to generate complex architectures without using lithography. The method produces robust planar and multilayer microfluidic structures that can be realized on wide range of substrates. Moreover, microfluidics can be realized on other systems (e.g. electrodes and transducers) directly without requiring any bonding or assembling steps, which often limit the materials selection in conventional microfluidic fabrication. Multilayer Polydimethylsiloxane (PDMS) microfluidic channelswere created using this technique to demonstrate the capability of the concept to realize flexible microfluidic electronics, drug delivery systems, and lab-on-a-chip devices. By utilizing conductive liquid metals (i.e. EGaIn) as the filling material of the channels, flexible passive resistive components and sensors have been realized. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:182 / 187
页数:6
相关论文
共 37 条
[1]  
Acton Q., 2013, POLYETHYLENE GLYCOLS, P384
[2]  
Alcantar NA, 2000, J BIOMED MATER RES, V51, P343, DOI 10.1002/1097-4636(20000905)51:3<343::AID-JBM7>3.0.CO
[3]  
2-D
[4]   Magnetic Nanocomposite Cilia Tactile Sensor [J].
Alfadhel, Ahmed ;
Kosel, Juergen .
ADVANCED MATERIALS, 2015, 27 (47) :7888-7892
[5]   Hemocompatibility, biocompatibility, inflammatory and in vivo studies of primary reference materials low-density polyethylene and polydimethylsiloxane:: A review [J].
Bélanger, MC ;
Marois, Y .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 2001, 58 (05) :467-477
[6]   Microfluidic electronics [J].
Cheng, Shi ;
Wu, Zhigang .
LAB ON A CHIP, 2012, 12 (16) :2782-2791
[7]  
Dharmatilleke S., 2000, Proc. SPIE Vol. 4177 Microfluid. Devices Syst. III, V4177, P83, DOI [10.1117/12.395676, DOI 10.1117/12.395676]
[8]   Lab-on-a-chip: microfluidics in drug discovery [J].
Dittrich, PS ;
Manz, A .
NATURE REVIEWS DRUG DISCOVERY, 2006, 5 (03) :210-218
[9]   3D printed microfluidic devices with integrated versatile and reusable electrodes [J].
Erkal, Jayda L. ;
Selimovic, Asmira ;
Gross, Bethany C. ;
Lockwood, Sarah Y. ;
Walton, Eric L. ;
McNamara, Stephen ;
Martin, R. Scott ;
Spence, Dana M. .
LAB ON A CHIP, 2014, 14 (12) :2023-2032
[10]   Femtosecond laser micromachining in transparent materials [J].
Gattass, Rafael R. ;
Mazur, Eric .
NATURE PHOTONICS, 2008, 2 (04) :219-225