English

Quantifying the contribution of material and junction resistances in nano-networks

Mesoscale and Nanoscale Physics 2023-11-29 v1

Abstract

Networks of nanowires and nanosheets are important for many applications in printed electronics. However, the network conductivity and mobility are usually limited by the inter-particle junction resistance, a property that is challenging to minimise because it is difficult to measure. Here, we develop a simple model for conduction in networks of 1D or 2D nanomaterials, which allows us to extract junction and nanoparticle resistances from particle-size-dependent D.C. resistivity data of conducting and semiconducting materials. We find junction resistances in porous networks to scale with nanoparticle resistivity and vary from 5 Ohm for silver nanosheets to 25 GOhm for WS2 nanosheets. Moreover, our model allows junction and nanoparticle resistances to be extracted from A.C. impedance spectra of semiconducting networks. Impedance data links the high mobility (~7 cm2/Vs) of aligned networks of electrochemically exfoliated MoS2 nanosheets to low junction resistances of ~670 kOhm. Temperature-dependent impedance measurements allow us to quantitatively differentiate intra-nanosheet phonon-limited band-like transport from inter-nanosheet hopping for the first time.

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Cite

@article{arxiv.2311.16740,
  title  = {Quantifying the contribution of material and junction resistances in nano-networks},
  author = {Cian Gabbett and Adam G. Kelly and Emmet Coleman and Luke Doolan and Tian Carey and Kevin Synnatschke and Shixin Liu and Anthony Dawson and Domhnall OSuilleabhain and Jose Munuera and Eoin Caffrey and John B. Boland and Zdenek Sofer and Goutam Ghosh and Sachin Kinge and Laurens D. A. Siebbeles and Neelam Yadav and Jagdish K. Vij and Muhammad Awais Aslam and Aleksandar Matkovic and Jonathan N. Coleman},
  journal= {arXiv preprint arXiv:2311.16740},
  year   = {2023}
}

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