Startseite Inkjet Printing of Conductive and Resistive Coatings
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Inkjet Printing of Conductive and Resistive Coatings

  • F. Varela López , A. Diez und A. Odriozola
Veröffentlicht/Copyright: 26. März 2013
Veröffentlichen auch Sie bei De Gruyter Brill

Abstract

Coating of functional materials is the basis of many electronic device manufacturing processes. Screen printing, roll coating and other methods have been used for decades, permitting low cost, high production rates of Printed Circuit Boards (PCBs), where conductive pathways are printed before components are integrated. Nowadays, the PCB industry in developed countries is suffering a revision of all manufacturing processes, to cope with severe market constraints: short runs and fast time-to-market. Inkjet technology has arrived to complement the traditional, analogical production, with new tools that makes possible to produce goods with great versatility.

In this work we will state the problem of inkjet printing functional materials in the frame of PCB manufacturing. The use of numerical methods to asset the formation of conductive pathlines using digital techniques will be presented. Also, the use of resistive and dielectric inks will be discussed.


Mail address: F. Varela López, CEMITEC (Centro Multidisciplinar de Tecnología e Innovación), Pza. CEIN 4, P.I. Mocholí, 31110 Noain (Navarra) Spain. E-mail:

References

1Molesa, S., et al.: High-quality Inkjet-printed Multilevel Interconnects and Inductive Components on Plastic for Ultra-low-cost RFID Applications, Mat. Res. Soc. Symp. Proc. 769, H8.3.1 (2003)10.1557/PROC-769-H8.3Suche in Google Scholar

2de Gans, B.-J., et al.: Inkjet Printing of Polymers: State of the Art and Future Developments, Advanced Materials16, p. 203 (2004)10.1002/adma.200300385Suche in Google Scholar

3Sirringhaus, H., Shimoda, T. (Eds.): Inkjet Printing of Functional Materials, MRS special issue, November (2003)10.1557/mrs2003.228Suche in Google Scholar

4Wang, Y., et al.: Maskless Lithography Using Drop-On-Demand Inkjet Printing Method, Emerging Lithographic Technologies VIII, Proceedings of SPIE5374, p. 628 (2004)10.1117/12.541711Suche in Google Scholar

5Yoshimura, K., et al.: Inkjet Printing Technology, OKI Technical Review64, p. 41 (1998)Suche in Google Scholar

6Janule, V. P.: Dynamic Surface Tension Measurement of Water-based Inks Formulations, Frustrations and Flexibilities, Ink& Print, June, p. 25 (1994)Suche in Google Scholar

7Bogy, D. B., Talke, F. E.: Experimental and Theoretical Study of Wave Propagation Phenomena in Drop-on-Demand Ink Jet Devices, IBM J. Res. Develop. 28, p. 314 (1984)10.1147/rd.283.0314Suche in Google Scholar

8Shield, T. W., et al.: Drop Formation by DOD Ink-jet Nozzles: A Comparison of Experimental and Numerical Simulation, IBM J. Res. Develop. 31, p. 96 (1987)10.1147/rd.311.0096Suche in Google Scholar

9Meinhart, C. D., Zhang, H.: The Flow Structure Inside a Microfabricated Inkjet Printhead, Journal of Microelectromechanical Systems9, p. 67 (2000)10.1109/84.825779Suche in Google Scholar

10Yeh, J.-T.: Simulation and Industrial Application of Inkjet, 7th National Computational Fluid Dynamics Conference, Kenting, p. 1 (2000)Suche in Google Scholar

11Shikhmurzaev, Y. D.: Moving Contact Lines in Liquid/Liquid/Solid Systems, J. Fluid Mech. 334, p. 211 (1997)10.1017/S0022112096004569Suche in Google Scholar

12van Dam, D. B., Le Clerc, C.: Experimental Study of the Impact of an Ink-jet Printed Droplet on a Solid Substrate, Physics of Fluids, 16, p. 3403 (2004)10.1063/1.1773551Suche in Google Scholar

13Perçin, G., Khuri-Yakub, B. T.: Piezoelectric Droplet Ejector for Ink-jet Printing of Fluids and Solid Particles, Review of Scientific Instruments74, p. 1120 (2003)10.1063/1.1532839Suche in Google Scholar

14Perçin, G., et al.: Controlled Ink-jet Printing and Deposition of Organic Polymers and Solid Particles, Applied Physics Letters73, p. 2375 (1998)10.1063/1.122465Suche in Google Scholar

15Larson, B. J., et al.: Controlled Deposition of Picoliter Amounts of Fluid Using an Ultrasonically Driven Micropipette, Review of Scientific Instruments75, p. 832 (2004)10.1063/1.1688436Suche in Google Scholar

Received: 2006-5-8
Accepted: 2006-11-9
Published Online: 2013-03-26
Published in Print: 2007-03-01

© 2007, Carl Hanser Verlag, Munich

Heruntergeladen am 26.11.2025 von https://www.degruyterbrill.com/document/doi/10.3139/217.2005/html
Button zum nach oben scrollen