Inkjet-Printed Ag-Layers on Flexible, Uncoated Paper Substrates

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Sensors 2020, 20, 2398 13 of 13 34. Lupo, D.; Clemens, W.; Breitung, S.; Hecker, K. OE-A roadmap for organic and printed electronics. In Applications of Organic and Printed Electronics; Springer Science + Business Media: New York, NY, USA, 2013; pp. 1–26. 35. Anner, G.E. Planar Processing Primer; Van Nostrand Reinhold: New York, NY, USA, 1990. 36. Ossila. Sheet Resistance: A Guide to Theory. Available online: https://www.ossila.com/pages/sheet-resistance- theory (accessed on 5 March 2020). 37. Van der Pauw, L.J. A method of measuring the resistivity and hall coefficient on lamellae of arbitrary shape. Philips Tech. Rev. 1958, 20, 220–224. 38. Wood, L.K.; Hrehorova, E.; Joyce, T.W.; Fleming, P.D.; Joyce, M.; Pekarovicova, A.; Bliznyuk, V. Paper substrates and inks for printed electronics. In Pira Ink on Paper Symposium; Smithers Pira: Surrey, UK, 2005. 39. Kim, S.; Cook, B.; Le, T.; Cooper, J.; Lee, H.; Lakafosis, V.; Vyas, R.; Moro, R.; Bozzi, M.; Georgiadis, A.; et al. Inkjet-printed antennas, sensors and circuits on paper substrate. IET Microw. Antennas Propag. 2013, 7, 858–868. [CrossRef] 40. Kavcˇicˇ, U.; Karlovits, I. Invasive plant-based paper as a substrate for electroconductive printing inks. Adv. Print. Media Technol. 2019, 46, 165–170. 41. Pammo, A.; Christophliemk, H.; Keskinen, J.; Björkqvist, T.; Siljander, S.; Mäntysalo, M.; Tuukkanen, S. Nanocellulose Films as Substrates for Printed Electronics. In Proceedings of the MARSS 2019—International Conference on Manipulation Automation and Robotics at Small Scales, Helsinki, Finland, 1–5 July 2019. 42. Moralez-Rodriguez, M.E.; Fuhr, P.L. Printed conductive transparent films for the fabrication of sensors by aerosol inkjet systems. Int. Res. J. Eng. Technol. 2019, 6, 1118–1127. 43. Kazani, I.; De Mey, G.; Hertleer, C.; Banaszczyk, J.; Schwarz, A.; Guxho, G.; Van Langenhove, L. Van Der Pauw method for measuring resistivities of anisotropic layers printed on textile substrates. Text. Res. J. 2011, 81, 2117–2124. [CrossRef] 44. Gieva, E.; Nikolov, G.; Nikolova, B. Sheet Resistance Measurement of Inkjet Printed Layers. In Proceedings of the 42nd International Spring Seminar on Electronics Technology (ISSE), Wrocław, Poland, 15–19 May 2019. 45. Enderling, S.; Brown, C.L.; Smith, S.; Dicks, M.H.; Stevenson, J.T.; Ross, A.W.S.; Mitkova, M.; Kozicki, M.N.; Walton, A.J. Suspended Greek Cross Test Structures for Measuring the Sheet Resistance on Non-Standard Cleanroom Materials. In Proceedings of the International Conference on Microelectronic Test Structures, ICMTS 2005, Leuven, Belgium, 4–7 April 2005. 46. Nanocell, P.V. Product Data Sheet. Available online: http://www.pvnanocell.com/sicrys-i50tm-119.html (accessed on 25 February 2020). 47. Nilsson, H.-E.; Unander, T.; Sidén, J.; Andersson, H.; Manuilskiy, A.; Hummelgard, M.; Gulliksson, M. System integration of electronics functions in smart packaging applications. IEEE Trans. Compon. Packag. Manuf. Technol. 2012, 2, 1723–1734. [CrossRef] 48. ISO—International Organization of Standardization. ISO 25178 Geometrical Product Specifications (GPS)—Surface Texture: Areal; International Organization of Standardization: Geneva, Switzerland, 2016. 49. Matula, R.A. Electrical resistivity of copper, gold, palladium, and silver. J. Phys. Chem. Ref. Data 1979, 8, 1147–1298. [CrossRef] 50. Fraden, I. Handbook of Modern Sensors: Physics, Designs, and Applications; Springer International Publishing: Cham, Switzerland, 2015. 51. Traiwatcharanon, P.; Timsorn, K.; Wongchoosuk, C. Flexible room-temperature resistive humidity sensor based on silver nanoparticles. Mater. Res. Express 2017, 4, 085038. [CrossRef] 52. Siegel, A.C.; Phillips, S.T.; Dickey, M.D.; Lu, N.; Suo, Z.; Whitesides, G.M. Foldable printed circuit boards on paper substrates. Adv. Funct. Mater. 2010, 20, 28–35. [CrossRef] 53. Groeninckx, G.; Berghmans, H.; Overgergh, N.; Smets, G. Crystallization of poly(ethylene terephthalate) induced by inorganic compounds. I. Crystallization behavior from the glassy state in a low-temperature region. J. Polym. Sci. Polym. Phys. Ed. 1974, 12, 303–316. [CrossRef] © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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