Improved Transfer Process for the Fully Additive Manufacturing of a Conductive Layer-Stacked Polymeric Cantilever
- 1 Flexible Electronics Research Center, National Institute of Advanced Industrial Science and Technology, Tsukuba, Japan
- 2 Flexible Electronics Research Center, National Institute of Advanced Industrial Science and Technology, Tsukuba, Japan
- 3 Flexible Electronics Research Center, National Institute of Advanced Industrial Science and Technology, Tsukuba, Japan
- 4 Flexible Electronics Research Center, National Institute of Advanced Industrial Science and Technology, Tsukuba, Japan
Abstract
This paper reports on an efficient fabrication process for a polymeric cantilever covered with conductive nano silver. The entire structure can be constructed additively using a printing process, without the use of an etching process or a sacrificial layer. The fabricated cantilever exhibits good linearity and forms a submillimeter-ordered air gap between itself and the substrate surface. Fine operation of a capacitive force gauge was obtained using the capacitance between the conductive cantilever and an electrode on the substrate. This process is expected to make possible the efficient manufacturing of various types of sensors that measure mechanical strain in a cantilever structure.
- Gao, W., Emaminejad, S., Nyein, H.Y.Y., Challa, S., Chen, K., Peck, A., Fahad, H.M., Ota, H., Shiraki, H., Kiriya, D., Lien, D-H., Brooks, G.A., Davis, R.W. and Javey, A. (2016) Fully Integrated Wearable Sensor Arrays for Multiplexed in Situ Perspiration Analysis. Nature, 529, 509-514. https://doi.org/10.1038/nature16521
- Gong, S., Schwalb, W., Wang, Y., Chen, Y., Tang, Y., Si, J., Shirinzadeh, B. and Cheng, W. (2015) A Wearable and Highly Sensitive Pressure Sensor with Ultrathin Gold Nanowires. Nature Communications, 5.
- Pan, L., Chortos, A., Yu, G., Wang, Y., Isaacson, S., Allen, R., Shi, Y., Dauskardt, R., and Bao, Z. (2014) An Ultra-Sensitive Resistive Pressure Sensor Based on Hollow-Sphere Microstructure Induced Elasticity in Conducting Polymer Film. Nature Communications, 5.
- Knopfmacher, O., Hammock, M.L., Appleton, A.L., Schwartz, G., Mei, J., Lei, T., Pei, J. and Bao, Z. (2014) Highly Stable Organic Polymer Field-Effect Transistor Sensor for Selective Detection in the Marine Environment. Nature Communications, 5.
- Bogue, R. (2014) Towards the Trillion Sensors Market. Sensor Review, 34, 137-142. https://doi.org/10.1108/SR-12-2013-755
- Wu, C., Petrini, V., Joseph, E. and Amiot, F. (2014) Design and Fabrication of a Multiple-Thickness Electrochemical Cantilever Sensor. Microelectronic Engineering, 119, 1-5. https://doi.org/10.1016/j.mee.2014.01.009
- Johansson, A., Calleja, M., Rasmussen, P.A. and Boisen, A. (2005) SU-8 Cantilever Sensor System with Integrated Readout. Sensors and Actuators A, 123-124, 111-115. https://doi.org/10.1016/j.sna.2005.03.025
- Wasisto, H.S., Merzsch, S., Waag, A., Uhde, E., Salthammer, T. and Peiner, E. (2012) Effect of Photoresist Coating on the Reusable Resonant Cantilever Sensors for Assessing Exposure to Airborne Nano-particles. Sensors and Actuators A, 47, 302-305.
- Sharma, H. and Mutharasan, R. (2013) Rapid and Sensitive Immunodetection of Listeria monocytogenes in Milk Using a Novel Piezoelectric Cantilever Sensor. Biosensors and Bioelectronics, 45, 158-162. https://doi.org/10.1016/j.bios.2013.01.068
- Sharma, H. and Mutharasan, R. (2013) hlyA Gene-Based Sensitive Detection of Listeria monocytogenes Using a Novel Cantilever Sensor. Analytical Chemistry, 85, 3222-3228. https://doi.org/10.1021/ac303561c
- Hou, H., Bai, X., Xing, C., Gu, N., Zhang, B. and Tang, J. (2013) Aptamer-Based Cantilever Array Sensors for Oxytetracycline Detection. Analytical Chemistry, 85, 2010-2014. https://doi.org/10.1021/ac3037574