Laser Processing and Printing of Multilayer Films for Inexpensive and Flexible Microsystems

By Rahim Rahimi

Electrical and Computer Engineering, Purdue University, West Lafayette, IN

Published on

Abstract

Flexible/stretchable electronics offer ideal properties for fabricating emerging health monitoring devices that can monitor the user’s well-being and their surrounding in a proactive and autonomous fashion. While the attractiveness of these devices are evident, they are often fabricated by conventional cleanroom required techniques that are either expensive or incompatible with rapid large-scale (e.g., roll-to-roll) production, which often prevents their translation into industry for addressing the community needs. In this talk, I will present a few inexpensive fabrication technologies that can be utilized for developing various flexible/stretchable physical and chemical sensors for wearable and lab-on-chip applications using novel inexpensive techniques including laser processing and printing. This presentation is divided into two main sections, each showcasing one of these technologies. In the first section, I will describe the use of localized CO2 laser irradiation to selectively convert thermoset polymer films (e.g., polyimide) into electrically conductive and highly porous carbon micro/nano structures. This process provides a unique and facile approach for direct writing of carbon-based conductive patterns on flexible polymer sheets in ambient conditions, eliminating complexities of current methods such as expensive CVD processes and complicated formulation/preparation of conductive carbon based inks used in inkjet printing. In this section, I will also demonstrate the use of laser ablation for selective patterning of conductive coatings from multilayer films such as ITO-coated PET and metalized paper as a simple and scalable alternative to conventional photolithography-based processes. In the second part of this talk, I will demonstrate a few strategies that were used to leverage printing technologies to create innovative platforms, including Smart dressing for monitoring and treatment of chronic wounds, disposable lab-on-chip diagnostic platforms, and electrochemical sensors for in-situ monitoring of soil nutrients. I will conclude by briefly commenting on our efforts to translate some of these technologies into clinical practice, as well as the future directions of this research and its potential combination with woven and non-woven smart textile-based systems.

Bio

Rahim Rahimi Rahim Rahimi is a postdoctoral scholar at Purdue University in the department of Electrical and Computer Engineering. He earned his B.S. (2009) and M.S. (2012) degrees in Electrical Engineering from the Iran University of Science and Technology, and his Ph.D. (2017) degree in Electrical and Computer Engineering from the Purdue University, USA. His research has explored development of innovative, scalable, multifunctional, microsystem platforms for medical applications, with particular emphasis on smart wearable and autonomous devices for wound monitoring and therapy. His research on smart dressing for burn victims and stretchable embroidered electronics has been featured in various news media, including Science Nation, Science360, The Computer World, and Science X. During his graduate and post-graduate career, he has co-authored over 50 publications in world renowned journals and international conferences as well as book chapter and patents. Dr. Rahimi has also has led research teams on multi-institutional research endeavors focused on developing scalable manufacturing processes of flexible electronic devices that can empower technologies for health-care and precision agriculture.

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Cite this work

Researchers should cite this work as follows:

  • Rahim Rahimi (2018), "Laser Processing and Printing of Multilayer Films for Inexpensive and Flexible Microsystems," https://nanohub.org/resources/28178.

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Time

Location

Room 2001, Birck Nanotehnology Center, Purdue. University, West Lafayette, IN

Laser Processing and Printing of Multilayer Films for Inexpensive and Flexible Microsystems
  • Laser processing and printing of multilayer films for inexpensive and flexible microsystems 1. Laser processing and printing … 0
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  • Outline 2. Outline 34.801468134801468
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  • Flexible electronics on arbitrary substrates 3. Flexible electronics on arbitr… 77.977977977977986
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  • Global initiative with growing market 4. Global initiative with growing… 107.74107440774108
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  • Materials 5. Materials 124.82482482482483
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  • Fabrication methods 6. Fabrication methods 148.81548214881548
    00:00/00:00
  • Cleanroom assisted technology 7. Cleanroom assisted technology 176.91024357691026
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  • Low-cost and Disposable 8. Low-cost and Disposable 216.18284951618287
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  • Printed Electronic 9. Printed Electronic 250.18351685018354
    00:00/00:00
  • Laser-Enabled Manufacturing 10. Laser-Enabled Manufacturing 296.5298631965299
    00:00/00:00
  • Laser material processing 11. Laser material processing 348.58191524858194
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  • Flexible electronics 12. Flexible electronics 413.84718051384721
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  • Outline 13. Outline 497.43076409743077
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  • Laser carbonization 14. Laser carbonization 503.50350350350351
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  • Laser carbonization 15. Laser carbonization 628.46179512846186
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  • Piezoresistive strain sensor 16. Piezoresistive strain sensor 675.77577577577586
    00:00/00:00
  • Finger motion detection 17. Finger motion detection 748.78211544878218
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  • Surface wettability 18. Surface wettability 763.86386386386391
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  • Carbon and Silver composite 19. Carbon and Silver composite 815.4154154154154
    00:00/00:00
  • EDX mapping of silver and carbon 20. EDX mapping of silver and carb… 847.24724724724729
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  • Electromechanical properties 21. Electromechanical properties 877.84451117784454
    00:00/00:00
  • Wireless pressure sensor (C/Ag composite) 22. Wireless pressure sensor (C/Ag… 907.87454120787459
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  • Wireless pressure sensor 23. Wireless pressure sensor 946.37971304637972
    00:00/00:00
  • Stretchable carbon−polyaniline composite 24. Stretchable carbon−polyanili… 980.21354688021358
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  • Electromechanical characterization 25. Electromechanical characteriza… 1020.7540874207541
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  • Stretchable pH sensor (C/PANI) 26. Stretchable pH sensor (C/PANI) 1076.0427093760427
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  • Stretchable Potentiometric pH sensor 27. Stretchable Potentiometric pH … 1148.6152819486154
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  • Outline 28. Outline 1175.4421087754422
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  • Laser ablation and selective etching 29. Laser ablation and selective e… 1238.4718051384718
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  • Multilayer film selective laser ablation 30. Multilayer film selective lase… 1309.8098098098099
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  • Laser patterning ITO-coated PET 31. Laser patterning ITO-coated PE… 1335.5355355355355
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  • Direct ablation of ITO film 32. Direct ablation of ITO film 1361.1277944611279
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  • Indirect CO2 laser patterning 33. Indirect CO2 laser patterning 1407.8745412078747
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  • Transparent pH monitoring system (ITO electrodes) 34. Transparent pH monitoring syst… 1478.712045378712
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  • pH monitoring on wound models 35. pH monitoring on wound models 1617.7510844177511
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  • Metallized films 36. Metallized films 1656.69002335669
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  • Metallized paper-Laser ablation 37. Metallized paper-Laser ablatio… 1731.831831831832
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  • Surface analysis 38. Surface analysis 1815.6823490156824
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  • Mechanical and Surface wetting analysis 39. Mechanical and Surface wetting… 1841.5081748415082
    00:00/00:00
  • Paper-based humidity and temperature sensor 40. Paper-based humidity and tempe… 1864.6312979646314
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  • Paper-based sensors 41. Paper-based sensors 1888.3883883883884
    00:00/00:00
  • Laser ablating laminated Al foil 42. Laser ablating laminated Al fo… 1913.4801468134801
    00:00/00:00
  • XPS and SEM Surface analysis 43. XPS and SEM Surface analysis 1948.9155822489156
    00:00/00:00
  • Wireless humidity sensor 44. Wireless humidity sensor 1980.7474140807474
    00:00/00:00
  • Outline 45. Outline 2030.3970637303971
    00:00/00:00
  • Chronic Wound Therapy 46. Chronic Wound Therapy 2116.3163163163163
    00:00/00:00
  • Patch with pH sensing and drug delivery 47. Patch with pH sensing and drug… 2171.6383049716383
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  • pH Sensor and Drug delivery 48. pH Sensor and Drug delivery 2201.2345679012346
    00:00/00:00
  • Oxygen in Wound Healing 49. Oxygen in Wound Healing 2240.5071738405072
    00:00/00:00
  • Substrate and interface films 50. Substrate and interface films 2295.3620286953619
    00:00/00:00
  • Design of honeycomb and unit cell patterns 51. Design of honeycomb and unit c… 2383.8171504838174
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  • Unit cell and in-vivo studies 52. Unit cell and in-vivo studies 2410.0100100100103
    00:00/00:00
  • Screen printed pH sensor array on paper 53. Screen printed pH sensor array… 2438.4384384384384
    00:00/00:00
  • Moisture sensor for wound dressing 54. Moisture sensor for wound dres… 2466.5331998665333
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  • Smarter Agriculture 55. Smarter Agriculture 2509.0423757090425
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  • Scalable Production 56. Scalable Production 2544.778111444778
    00:00/00:00
  • Roll-to-roll fabricated Nitrate Sensors 57. Roll-to-roll fabricated Nitrat… 2569.9366032699368
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  • Outline 58. Outline 2590.056723390057
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  • ①Textile-Based Wearable Electronics 59. ①Textile-Based Wearable Elec… 2604.9382716049386
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  • ②Smart Functional and Biodegradable Films 60. ②Smart Functional and Biode… 2721.5548882215548
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  • ③Scalable manufacturing of hybrid systems 61. ③Scalable manufacturing of h… 2885.3853853853857
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  • Acknowledgements 62. Acknowledgements 2968.5352018685353
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  • Thank you for your attention! 63. Thank you for your attention! 2989.1224557891228
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