Two-dimensional transition-metal dichalcolgenides (2D-TMDs) are among the most intriguing materials for next-generation electronic and optoelectronic devices. Albeit still at the embryonic stage, building thin films by manipulating and stacking preformed 2D nanosheets is now emerging as a practical and cost-effective bottom-up paradigm to obtain excellent electrical properties over large areas. Herein, we exploit the ultrathin morphology and outstanding solution stability of 2D WS2 colloidal nanocrysta Is to make thin films of TMDs assembled on a millimetre scale by a layer-by-layer deposition approach. We found that a room-temperature surface treatment with a superacid, performed with the precise scope of removing the native insulating surfactants, promotes in-plane assembly of the colloidal WS2 nanoflakes into stacks parallel to the substrate, along with healing of sulphur vacancies in the lattice that are detrimental to electrical conductivity. The as-obtained 2D WS2 thin films, characterized by a smooth and compact morphology, feature a high planar conductivity of up to 1 mu S, comparable to the values reported for epitaxially grown WS2 monolayers, and enable photocurrent generation upon light irradiation over a wide range of visible to near-infrared frequencies.

In-plane Aligned Colloidal 2D WS2 Nanoflakes for Solution-Processable Thin Films with High Planar Conductivity

Mastria Rosanna
Primo
;
Scarfiello Riccardo
Secondo
;
Altamura Davide;Giannini Cinzia;Liscio Andrea;Kovtun Alessandro;Bianco Giuseppe Valerio;Bruno Giovanni;Grillo Vincenzo;Nobile Concetta;Cola Adriano;Gambino Salvatore
;
Rizzo Aurora
Ultimo
2019

Abstract

Two-dimensional transition-metal dichalcolgenides (2D-TMDs) are among the most intriguing materials for next-generation electronic and optoelectronic devices. Albeit still at the embryonic stage, building thin films by manipulating and stacking preformed 2D nanosheets is now emerging as a practical and cost-effective bottom-up paradigm to obtain excellent electrical properties over large areas. Herein, we exploit the ultrathin morphology and outstanding solution stability of 2D WS2 colloidal nanocrysta Is to make thin films of TMDs assembled on a millimetre scale by a layer-by-layer deposition approach. We found that a room-temperature surface treatment with a superacid, performed with the precise scope of removing the native insulating surfactants, promotes in-plane assembly of the colloidal WS2 nanoflakes into stacks parallel to the substrate, along with healing of sulphur vacancies in the lattice that are detrimental to electrical conductivity. The as-obtained 2D WS2 thin films, characterized by a smooth and compact morphology, feature a high planar conductivity of up to 1 mu S, comparable to the values reported for epitaxially grown WS2 monolayers, and enable photocurrent generation upon light irradiation over a wide range of visible to near-infrared frequencies.
2019
Istituto di Cristallografia - IC
Istituto di Nanotecnologia - NANOTEC
Istituto per la Microelettronica e Microsistemi - IMM
Istituto per la Sintesi Organica e la Fotoreattivita' - ISOF
Istituto Nanoscienze - NANO
Inglese
9
13
https://doi.org/10.1038/s41598-019-45192-1
Sì, ma tipo non specificato
TRANSITION-METAL DICHALCOGENIDES
TUNGSTEN DISULFIDE
A.R., R.M., C.N., and R.S. gratefully acknowledge SIR project "Two-Dimensional Colloidal Metal Dichalcogenides based Energy-Conversion Photovoltaics" (2D ECO), Bando SIR (Scientific Independence of young Researchers) 2014 Ministero dell'Istruzione dell'Università e della Ricerca (MIUR) Decreto Direttoriale 23 gennaio 2014 no. 197 (project number RBSI14FYVD, CUP: B82I15000950008). A.L. and A.K. gratefully acknowledge H2020 - Graphene Flagship (grant agreement n°696656). P. D.C. acknowledges Apulia Region for project "Nanoapulia- nanofotocatalizzatori per un'atmosfera più pulita" (Bando Aiuti a Sostegno dei Cluster Tecnologici Regionali cod. MDI6SR1 - CUP B38C14001140008). V.G. gratefully acknowledges European Union's Horizon 2020 Research and Innovation Programme under Grant Agreement No 766970 Q-SORT (H2020-FETOPEN-1-2016-2017).
16
info:eu-repo/semantics/article
262
Mastria, Rosanna; Scarfiello, Riccardo; Altamura, Davide; Giannini, Cinzia; Liscio, Andrea; Kovtun, Alessandro; Bianco, GIUSEPPE VALERIO; Bruno, Giova...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
open
   QUANTUM SORTER
   Q-SORT
   H2020
   766970

   Graphene Flagship Core Project 3
   GrapheneCore3
   H2020
   881603
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/389616
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