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  5. All-2D Material Inkjet-Printed Capacitors: Toward Fully Printed Integrated Circuits

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Article
English
2018

All-2D Material Inkjet-Printed Capacitors: Toward Fully Printed Integrated Circuits

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English
2018
ACS Nano
Vol 13 (1)
DOI: 10.1021/acsnano.8b06464

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Konstantin ‘kostya’  Novoselov
Konstantin ‘kostya’ Novoselov

The University of Manchester

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Robyn Worsley
Lorenzo Pimpolari
Daryl McManus
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Abstract

A well-defined insulating layer is of primary importance in the fabrication of passive (e.g. capacitors) and active (e.g. transistors) components in integrated circuits. One of the most widely known 2-Dimensional (2D) dielectric materials is hexagonal boron nitride (hBN). Solution-based techniques are cost-effective and allow simple methods to be used for device fabrication. In particular, inkjet printing is a low-cost, non-contact approach, which also allows for device design flexibility, produces no material wastage and offers compatibility with almost any surface of interest, including flexible substrates. In this work we use water-based and biocompatible graphene and hBN inks to fabricate all-2D material and inkjet-printed capacitors. We demonstrate an areal capacitance of 2.0 \pm 0.3 nF cm^(-2) for a dielectric thickness of \sim 3 \mu m and negligible leakage currents, averaged across more than 100 devices. This gives rise to a derived dielectric constant of 6.1 \pm 1.7. The inkjet printed hBN dielectric has a breakdown field of 1.9 \pm 0.3 MV cm^(-1). Fully printed capacitors with sub-/mu m hBN layer thicknesses have also been demonstrated. The capacitors are then exploited in two fully printed demonstrators: a resistor-capacitor (RC) low-pass filter and a graphene-based field effect transistor.

How to cite this publication

Robyn Worsley, Lorenzo Pimpolari, Daryl McManus, Ning Ge, Robert Ionescu, Jarrid A. Wittkopf, Adriana Alieva, Giovanni Basso, Massimo Macucci, Giuseppe Iannaccone, Konstantin ‘kostya’ Novoselov, Helen Holder, Gianluca Fiori, Cinzia Casiraghi (2018). All-2D Material Inkjet-Printed Capacitors: Toward Fully Printed Integrated Circuits. ACS Nano, 13(1), pp. 54-60, DOI: 10.1021/acsnano.8b06464.

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Publication Details

Type

Article

Year

2018

Authors

14

Datasets

0

Total Files

0

Language

English

Journal

ACS Nano

DOI

10.1021/acsnano.8b06464

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