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Redesigning 2D Materials for the Formulation of Semiconducting Inks

Project: Research funding

Project Details

Abstract

2D-INK is targeted at developing inks of novel 2D semiconducting materials for low-cost large-area fabrication processes on insulating substrates through a new methodology, which will exceed the properties of state-of-the-art graphene- and graphene oxide based inks. Achieving this would represent an important step forward in the processing of 2D semiconducting materials and will provide the key parameters for fabricating the next generation of ultrathin
electronic appliances.
The inherent high-risk of 2D-INK is countered by a strongly interdisciplinary research team composed of 9 partners (8 academics + 1 SME) with demonstrated experience in their corresponding fields and with different yet highly complementary backgrounds. Therefore only together and in synergy they will be able to address the challenges of the multiple research and innovation aspects of 2D-INK that cover the entire value chain from materials design and synthesis, characterisation, formulation and processing to device implementation.
In addition 2D-INK has the potential to revolutionise research on 2D semiconducting materials way beyond the current interests on synthesis (high impact), since the efficient dispersion and formulation of 2D semiconducting materials into inks enables the applications of 2D semiconducting materials over different scientific and technological disciplines, such as electronics, sensing, photonics, energy storage and conversion, spintronics, etc.
Overall, 2D-INK addresses perfectly the challenge of this call as it is an archetype of an early stage, high risk visionary science and technology collaborative research project that explores radically new manufacturing and processing technologies for novel 2D semiconducting materials.
Acronym2D-INK
StatusFinished
Effective start/end date1/01/1631/12/18

Collaborative partners

  • University of Vienna
  • University of the Basque Country (lead)
  • Universitat de València
  • Technische Universität München
  • Katholieke Universiteit Leuven
  • University of Nottingham
  • Basque Research & Technology Alliance (BRTA)
  • Graphenea SA
  • Toward Confined Carbyne with Tailored Properties

    Shi, L. (Corresponding author), Senga, R., Suenaga, K., Kataura, H., Saito, T., Paz, A. P. (Corresponding author), Rubio, A. (Corresponding author), Ayala, P. & Pichler, T. (Corresponding author), 27 Jan 2021, In: Nano Letters. 21, 2, p. 1096-1101 6 p.

    Publications: Contribution to journalArticlePeer Reviewed

  • Extraction of Linear Carbon Chains Unravels the Role of the Carbon Nanotube Host

    Shi, L., Yanagi, K., Cao, K., Kaiser, U., Ayala, P. & Pichler, T. (Corresponding author), 28 Aug 2018, In: ACS Nano. 12, 8, p. 8477–8484 8 p.

    Publications: Contribution to journalArticlePeer Reviewed

  • Isotope effect on the quantum thermal transport of carbyne

    Wu, Y., Zhao, J., Sun, G. & Shi, L. (Corresponding author), 1 Mar 2018, In: Applied Physics Letters. 112, 9, 4 p., 091906 .

    Publications: Contribution to journalArticlePeer Reviewed