4.4 Article

Ink-jet printing of graphene for flexible electronics: An environmentally-friendly approach

Journal

SOLID STATE COMMUNICATIONS
Volume 224, Issue -, Pages 53-63

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ssc.2015.08.011

Keywords

Graphene ink; Liquid phase exfoliation; Conductive stripes; PET substrates

Funding

  1. European Union [604391 Graphene Flagship]

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Mechanical flexibility is considered an asset in consumer electronics and next-generation electronic systems. Printed and flexible electronic devices could be embedded into clothing or other surfaces at home or office or in many products such as low-cost sensors integrated in transparent and flexible surfaces. In this context inks based on graphene and related two-dimensional materials (2DMs) are gaining increasing attention owing to their exceptional (opto)electronic, electrochemical and mechanical properties. The current limitation relies on the use of solvents, providing stable dispersions of graphene and 2DMs and fitting the proper fluidic requirements for printing, which are in general not environmentally benign, and with high boiling point. Non-toxic and low boiling point solvents do not possess the required rheological properties (i.e., surface tension, viscosity and density) for the solution processing of graphene and 2DMs. Such solvents (e.g., water, alcohols) require the addition of stabilizing agents such as polymers or surfactants for the dispersion of graphene and 2DMs, which however unavoidably corrupt their properties, thus preventing their use for the target application. Here, we demonstrate a viable strategy to tune the fluidic properties of water/ethanol mixtures,(low-boiling point solvents) to first effectively exfoliate graphite and then disperse graphene flakes to formulate graphene-based inks. We demonstrate that such inks can be used to print conductive stripes (sheet resistance of similar to 13 k Omega/square) on flexible substrates (polyethylene terephthalate), moving a step forward towards the realization of graphene-based printed electronic devices. (C) 2015 Elsevier Ltd. All rights reserved.

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