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Precise Manufacturing and Performance Validation of Paper-Based Passive Microfluidic Micromixers

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Abstract

Micromixers are one of the most frequently used components in microfluidics. Passive micromixers are an emerging type with unique features in terms of reliability, robustness and efficiency. Hence, this study aimed to design, fabricate and test new multilayered passive micromixers consisting of three ad hoc layers, by means of a precise and cost-effective xurography manufacturing technique. The first and third layers are PVC foils, whereas the second layer is paper, incorporating microchannels of straight line or zig-zag configuration. Three different types of papers were analyzed as materials for the middle layer. Results demonstrated that immersing the papers into paraffin wax resulted in significantly improved physical characteristics, including solidification and intactness that reduced leakage of fluids into inside channels, thereby enhancing internal efficacy and delivery mechanisms. Subsequent assessments were carried out on mixing performance at various flow rates, pattern-related flow rates at various pressures and paper types, and results showed the impact of a zig-zag versus straight line configuration, demonstrating the importance of flow patterns on features of micromixers and their applications in microfluidic devices. Furthermore, image analysis was conducted to determine mixing efficiency of the proposed microfluidic micromixers.

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References

  1. Streets, A. M., & Huang, Y. (2013). Chip in a lab: Microfluidics for next generation life science research. Biomicrofluidics, 7, 011302.

    Article  Google Scholar 

  2. Altundemir, S., Uguz, A. K., & Ulgena, K. (2017). A review on wax printed microfluidic paper-based devices for international health. Biomicrofluidics, 11, 041501.

    Article  Google Scholar 

  3. Tobjork, D., & Osterbacka, R. (2011). Paper electronics. Advanced Materials, 23, 1935–1961.

    Article  Google Scholar 

  4. Xia, Y., Si, J., & Li, Z. (2014). Fabrication techniques for microfluidic paper-based analytical devices and their applications for biological testing: A review. Biosensors & Bioelectronics, 77, 774–789.

    Article  Google Scholar 

  5. Klasner, S. A., Price, A. K., Hoeman, K. W., Wilson, K. W., Bell, K. J., & Culbertson, C. T. (2010). Paper-based microfluidic devices for analysis of clinically relevant analytes present in urine and saliva. Analytical and Bioanalytical Chemistry, 397, 1821–1829.

    Article  Google Scholar 

  6. Spicar-Mihalic, P., Toley, B., Houghtaling, J., Liang, T., Yager, P., & Fu, E. (2013). CO2 laser cutting and ablative etching for the fabrication of paper-based devices. Journal of Micromechanics and Microengineering, 23, 067003.

    Article  Google Scholar 

  7. Sameenoi, Y., Nongkai, P. N., Nouanthavong, S., Henry, C. S., & Nacapricha, D. (2014). One-step polymer screen-printing for microfluidic paper-based analytical device (μPAD) fabrication. Analyst, 139, 6580–6588.

    Article  Google Scholar 

  8. Li, X., Tian, J., Garnier, G., & Shen, W. (2010). Fabrication of paper-based microfluidic sensors by printing. Colloids and Surfaces, 76, 564–570.

    Article  Google Scholar 

  9. Chen, J., Hou, Q., Guo, Z., Nie, Y., Peng, Z., & Teng R. K. F. (2017). A biomedical microfluidic mixer in MEMS application using inkjet. In IEEE 12th international conference on ASIC (ASICON), 17502714.

  10. Yetisen, A. K., Akram, M. S., & Lowe, C. R. (2013). Paper-based microfluidic point-of-care diagnostic devices. Lab on a Chip, 13, 2210–2251.

    Article  Google Scholar 

  11. Chen, X., Shenand, J., & Hu, Z. (2018). Fabrication and performance evaluation of two multi-layer passive micromixers. Sensor Review, 38, 321–325.

    Article  Google Scholar 

  12. Serex, L., Bertsch, A., & Renaud, P. (2018). Microfluidics: A new layer of control for extrusion-based 3D printing. Micromachines, 9, 86.

    Article  Google Scholar 

  13. Gidde, R. R., Pawar, P. M., Ronge, B. P., Misal, N. D., Kapurkar, R. B., & Parkhe, A. K. (2018). Evaluation of the mixing performance in a planar passive micromixer with circular and square mixing chambers. Microsystem Technologies, 24, 2599–2610.

    Article  Google Scholar 

  14. Deng, Y., Liu, Z., Zhang, P., Liu, Y., Gao, Q., & Wu, Y. (2012). A flexible layout design method for passive micromixers. Biomedical Microdevices, 14, 929–945.

    Article  Google Scholar 

  15. Bernacka Wojcik, I., Ribeiro, S., Wojcik, P. J., Alves, P. U., Busani, T., Fortunato, E., et al. (2014). Experimental optimization of a passive planar rhombic micromixer with obstacles for effective mixing in a short channel length. RSC Advances, 4, 56013–56025.

    Article  Google Scholar 

  16. Lee, C. Y., Chang, C. L., Wang, Y. N., & Fu, L. M. (2011). Microfluidic mixing: A Review. International Journal of Molecular Sciences, 12, 3263–3287.

    Article  Google Scholar 

  17. Li, P., Cogswell, J., & Faghri, M. (2012). Design and test of a passive planar labyrinth micromixer for rapid fluid mixing. Sensors and Actuators B, 174, 126–132.

    Article  Google Scholar 

  18. Cai, G., Xue, L., Zhang, H., & Lin, J. (2017). A review on micromixers. Micromachines, 8, 274.

    Article  Google Scholar 

  19. Whulanza, Y., Utomo, M., & Hilman, A. (2018). Realization of a passive micromixer using Herringbone structure. AIP Conference Proceedings, 1933, 040003.

    Article  Google Scholar 

  20. Chen, X., & Li, T. (2013). A novel passive micromixer designed by applying an optimization algorithm to the zigzag microchannel. Chemical Engineering Journal, 313, 1406–1414.

    Article  Google Scholar 

  21. Zhang, Y., Hu, Y., & Wu, H. (2012). Design and simulation of passive micromixers based on capillary. Microfluidics and Nanofluidics, 13, 809–818.

    Article  Google Scholar 

  22. Strong, E. B., Schultz, S. A., Martinez, A. W., & Martinez, N. W. (2019). Fabrication of miniaturized paper-based microfluidic devices (MicroPADs). Scientific Reports, 9, 7.

    Article  Google Scholar 

  23. Songjaroen, T., Dungchai, W., Chailapakul, O., & Laiwattanapaisal, W. (2012). Novel, simple and low-cost alternative method for fabrication of paper-based microfluidics by wax dipping. Talanta, 85, 2587–2593.

    Article  Google Scholar 

  24. Tenda, K., Ota, R., Yamada, K., Henares, T. G., Suzuki, K., & Citterio, D. (2016). High-resolution microfluidic paper-based analytical devices for sub-microliter sample analysis. Micromachines, 7, 80.

    Article  Google Scholar 

  25. Zhou, C., Zhanga, Y., Le, S., Nieb, J., Zhang, T., Liu, F., et al. (2014). Fabrication of paper-based microfluidics by single-step wax printing for portable multianalyte bioassays. Advanced Materials Research, 881–883, 503–508.

    Article  Google Scholar 

  26. Zhong, Z. W., Wang, Z. P., & Huang, G. X. D. (2012). Investigation of wax and paper materials for the fabrication of paper-based microfluidic devices. Microsystem Technologies, 18, 649–659.

    Article  Google Scholar 

  27. Jang, I., & Song, S. (2015). Facile and precise flow control for a paper-based microfluidic device through varying paper permeability. Lab on a Chip, 15(16), 3405–3412.

    Article  Google Scholar 

  28. Xie, H., Zhao, X., & Yang, H. (2010) Experimental and numerical study on a planar passive micromixer with semicircle mixing elements. In IEEE/ASME international conference on advanced intelligent mechatronics, Montréal, Canada, July 6–9 (pp. 1013–1016).

  29. Chung, C., Chen, Y. J., Chen, P. C., & Chen, C. Y. (2015). Fabrication of PDMS passive micromixer by lost-wax casting. International Journal of Precision Engineering and Manufacturing, 16(9), 2033–2039.

    Article  Google Scholar 

  30. Kojić, S., Stojanović, G., & Radonić, V. (2019). Novel cost-effective microfluidic chip based on hybrid fabrication and its comprehensive characterization. Sensors, 19(7), 1719–1737.

    Article  Google Scholar 

  31. Garofalo, F., Adrover, A., Cerbelli, S., & Giona, M. (2010). Spectral characterization of static mixers. The S-shaped micromixer as a case study. AIChE Journal, 56, 318–335.

    Google Scholar 

  32. Okuducu, M., Aral, M., Okuducu, M. B., & Aral, M. M. (2018). Performance analysis and numerical evaluation of mixing in 3-D T-shape passive micromixers. Micromachines, 9, 210.

    Article  Google Scholar 

  33. Kamholz, A. E., Weigl, B. H., Finlayson, B. A., & Yager, P. (1999). Quantitative analysis of molecular interaction in a microfluidic channel: The T-sensor. Analytical Chemistry, 71, 5340–5347.

    Article  Google Scholar 

  34. Rezk, A. R., Qi, A., Friend, J. R., Li, W. H., & Yeo, L. Y. (2012). Uniform mixing in paper-based microfluidic systems using surface acoustic waves. Lab on a Chip, 12, 773–779.

    Article  Google Scholar 

  35. Zhang, S., & Chen, X. (2018). A novel passive micromixer based on Koch fractal principle. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 40, 487–494.

    Article  Google Scholar 

Download references

Acknowledgements

Results presented in this article received funding from the European Union’s Horizon 2020 research and innovation programme under the Marie Skłodowska-Curie Grant Agreement No. 690876 – MEDLEM as well as partly supported within the Project No. 142–451-2459/2018.

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Correspondence to Goran Stojanović.

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Samae, M., Ritmetee, P., Chirasatitsin, S. et al. Precise Manufacturing and Performance Validation of Paper-Based Passive Microfluidic Micromixers. Int. J. Precis. Eng. Manuf. 21, 499–508 (2020). https://doi.org/10.1007/s12541-019-00272-0

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