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Investigation on Replication of Microfluidic Channels by Hot Embossing

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Date

2017

Journal Title

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Volume Title

Publisher

Taylor & Francis inc

Open Access Color

Green Open Access

No

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Top 10%
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Top 10%
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Top 10%

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Abstract

In this study, effects of embossing temperature, time, and force on production of a microfluidic device were investigated. Polymethyl methacrylate (PMMA) substrates were hot embossed by using a micromilled aluminum mold. The process parameters were altered to observe the variation of replication rate in width and depth as well as symmetry of the replicated microfluidic channels. Analysis of variance (ANOVA) on the experimental results indicated that embossing temperature was the most important process parameter, whereas embossing time and force have less impact. One distinguishing aspect of this study is that, the channels were observed to be skewed to either side of the channel depending on the location of the protrusions on the mold. The mechanism of the skewness was investigated by finite element analysis and discussed in detail. Results showed that the skewness depends on the flow characteristics of the material and could be reduced by increasing the embossing temperature. The best replication rates were obtained at parameter settings of 115 degrees C, 10kN, and 8min for the molds with minimum 56 mu m wide features of 120 mu m depth. We also showed that the fabricated channels could be successfully sealed by solvent-assisted thermo-compressive bonding at 85 degrees C under 5.5kN force.

Description

Yildirim, Ender/0000-0002-7969-2243

Keywords

Bonding, Channel, Embossing, Hot, Microfluidics, Plastic, Pmma, Replication

Fields of Science

02 engineering and technology, 0210 nano-technology

Citation

Çoğun, Ferah; Yıldırım, Ender; Arıkan, M.A. Sahir, "Investigation on replication of microfluidic channels by hot embossing", Materials And Manufacturing Processes, Vol.32, No.16, pp.1838-1844, (2017).

WoS Q

Q2

Scopus Q

Q1
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OpenCitations Citation Count
29

Source

Materials and Manufacturing Processes

Volume

32

Issue

16

Start Page

1838

End Page

1844
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CrossRef : 1

Scopus : 30

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Mendeley Readers : 38

SCOPUS™ Citations

33

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Web of Science™ Citations

30

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Page Views

2

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