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  4. Photoluminescence emission induced by localized states in halide-passivated colloidal two-dimensional WS2 nanoflakes
 
research article

Photoluminescence emission induced by localized states in halide-passivated colloidal two-dimensional WS2 nanoflakes

Mastria, Rosanna
•
Loiudice, Anna  
•
Vavra, Jan  
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February 21, 2021
Journal of Materials Chemistry C

Engineering physicochemical properties of two-dimensional transition metal dichalcogenide (2D-TMD) materials by surface manipulation is essential to enabling their practical and large-scale application. This is especially challenging for colloidal 2D-TMDs that are plagued by the unintentional formation of structural defects during the synthetic procedure. However, the available methods to manage surface states of 2D-TMDs in solution phase are still limited, hampering the production of high-quality colloidal 2D-TMD inks. Here, we demonstrate an efficient solution-phase strategy to passivate surface defect states of colloidal WS2 nanoflakes with halide ligands, which results in the activation of their photoluminescence emission. Photophysical investigation and density functional theory calculations suggest that halide atoms enable the suppression of non-radiative recombination through the elimination of deep gap trap states and the introduction of localized states in the energy band structure from which excitons can efficiently recombine. Importantly, halide passivated WS2 nanoflakes retain colloidal stability and photoluminescence emission after several weeks of storage in ambient atmosphere, corroborating the potential of developed WS2 inks thereof.

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Type
research article
DOI
10.1039/d0tc05285j
Web of Science ID

WOS:000623516700019

Author(s)
Mastria, Rosanna
Loiudice, Anna  
Vavra, Jan  
Nobile, Concetta
Scarfiello, Riccardo
Cozzoli, P. Davide
Kovtun, Alessandro
Liscio, Andrea
Sestu, Nicola
Marongiu, Daniela
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Date Issued

2021-02-21

Publisher

Royal Society of Chemistry

Published in
Journal of Materials Chemistry C
Volume

9

Issue

7

Start page

2398

End page

2407

Subjects

Materials Science, Multidisciplinary

•

Physics, Applied

•

Materials Science

•

Physics

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LNCE  
Available on Infoscience
April 10, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/177197
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