Sucrose-based fabrication of 3D-networked, cylindrical microfluidic channels for rapid prototyping of lab-on-a-chip and vaso-mimetic devices

Lab on a Chip ◽  
2012 ◽  
Vol 12 (15) ◽  
pp. 2638 ◽  
Author(s):  
Jiwon Lee ◽  
Jungwook Paek ◽  
Jaeyoun Kim
Author(s):  
Hsiu-hung Chen ◽  
Dayong Gao

The manipulation of particles and cells in micro-fluids, such as cell suspensions, is a fundamental task in Lab-on-a-Chip applications. According to their analysis purposes in either the pre- or post-processing stage, particles/cells flowing inside a microfluidic channel are handled by means of enriching, trapping, separating or sorting. In this study, we report the use of patterning flows produced by a series of grooved surfaces with different geometrical setups integrated into a microfluidic device, to continuously manipulate the flowing particles (5 to 20 μm in diameters) of comparable sizes to the depth of the channel in ways of: 1) concentrating, 2) focusing, and 3) potential separating. The device is fabricated using soft lithographic techniques and is composed of inlets, microfluidic channels, and outlets for loading, manipulating and retrieving cell suspensions, respectively. Such fabrication methods allow rapid prototyping of micron or submicron structures with multiple layers and replica molding on those fabricated features in a clear polymer. The particles are evenly distributed in the entrance of the microchannel and illustrate the enriching, focusing, or size-selective profiles after passing through the patterning grooves. We expect that the techniques of manipulating cell suspensions from this study can facilitate the development of cell-based devices on 1) the visualization of counting, 2) the visualization of sizing, and 3) the particle separating.


The Analyst ◽  
2016 ◽  
Vol 141 (12) ◽  
pp. 3511-3525 ◽  
Author(s):  
C. M. Gabardo ◽  
L. Soleymani

Rapid prototyping is a critical step in the product development cycle of miniaturized chemical and bioanalytical devices, often categorized as lab-on-a-chip devices, biosensors, and micro-total analysis systems.


Micromachines ◽  
2017 ◽  
Vol 8 (11) ◽  
pp. 328 ◽  
Author(s):  
Rebeca Martínez Vázquez ◽  
Gianluca Trotta ◽  
Annalisa Volpe ◽  
Giuseppe Bernava ◽  
Vito Basile ◽  
...  

2020 ◽  
Vol 6 (16) ◽  
pp. eaay8305 ◽  
Author(s):  
Yulieth Arango ◽  
Yuksel Temiz ◽  
Onur Gökçe ◽  
Emmanuel Delamarche

Microfluidics are essential for many lab-on-a-chip applications, but it is still challenging to implement a portable and programmable device that can perform an assay protocol autonomously when used by a person with minimal training. Here, we present a versatile concept toward this goal by realizing programmable liquid circuits where liquids in capillary-driven microfluidic channels can be controlled and monitored from a smartphone to perform various advanced tasks of liquid manipulation. We achieve this by combining electro-actuated valves (e-gates) with passive capillary valves and self-vented channels. We demonstrate the concept by implementing a 5-mm-diameter microfluidic clock, a chip to control four liquids using 100 e-gates with electronic feedback, and designs to deliver and merge multiple liquids sequentially or in parallel in any order and combination. This concept is scalable, compatible with high-throughput manufacturing, and can be adopted in many microfluidics-based assays that would benefit from precise and easy handling of liquids.


2011 ◽  
Vol 32 (22) ◽  
pp. 3115-3120
Author(s):  
Regina Preywisch ◽  
Marion Ritzi-Lehnert ◽  
Klaus S. Drese ◽  
Tina Röser

TECHNOLOGY ◽  
2016 ◽  
Vol 04 (04) ◽  
pp. 234-239 ◽  
Author(s):  
Daniel P. Yen ◽  
Yuta Ando ◽  
Keyue Shen

Micromilling has great potential in producing microdevices for lab-on-a-chip and organ-on-a-chip applications, but has remained under-utilized due to the high machinery costs and limited accessibility. In this paper, we assessed the machining capabilities of a low-cost 3-D mill in polycarbonate material, which were showcased by the production of microfluidic devices. The study demonstrates that this particular mill is well suited for the fabrication of multi-scale microdevices with feature sizes from micrometers to centimeters.


Author(s):  
Gordon D. Hoople ◽  
David A. Rolfe ◽  
Katherine C. McKinstry ◽  
Joanna R. Noble ◽  
David A. Dornfeld ◽  
...  

Recent developments in microfluidics have opened up new interest in rapid prototyping with features on the microscale. Microfluidic devices are traditionally fabricated using photolithography, however this process can be time consuming and challenging. Laser ablation has emerged as the preferred solution for rapid prototyping of these devices. This paper explores the state of rapid prototyping for microfluidic devices by comparing laser ablation to micromilling and 3D printing. A microfluidic sample part was fabricated using these three methods. Accuracy of the features and surface roughness were measured using a surface profilometer, scanning electron microscope, and optical microscope. Micromilling was found to produce the most accurate features and best surface finish down to ∼100 μm, however it did not achieve the small feature sizes produced by laser ablation. 3D printed parts, though easily manufactured, were inadequate for most microfluidics applications. While laser ablation created somewhat rough and erratic channels, the process was within typical dimensions for microfluidic channels and should remain the default for microfluidic rapid prototyping.


RSC Advances ◽  
2015 ◽  
Vol 5 (87) ◽  
pp. 71203-71209 ◽  
Author(s):  
Payton J. Goodrich ◽  
Farrokh Sharifi ◽  
Nastaran Hashemi

Microfluidic technology has provided innovative solutions to numerous problems, but the cost of fabricating microfluidic channels is impeding its expansion. We created multilayer microchannels significantly quicker and cheaper than current methods.


2019 ◽  
Vol 58 (10) ◽  
pp. 4137-4142 ◽  
Author(s):  
Boyce S. Chang ◽  
Mario Fratzl ◽  
Andrea Boyer ◽  
Andrew Martin ◽  
Henry C. Ahrenholtz ◽  
...  

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