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  4. Structural Phase Transition and Bandgap Control through Mechanical Deformation in Layered Semiconductors 1T-ZrX2 (X = S, Se)
 
research article

Structural Phase Transition and Bandgap Control through Mechanical Deformation in Layered Semiconductors 1T-ZrX2 (X = S, Se)

Martino, Edoardo  
•
Santos-Cottin, David
•
Le Mardele, Florian
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September 8, 2020
Acs Materials Letters

Applying elastic deformation can tune a material's physical properties locally and reversibly. Spatially modulated lattice deformation can create a bandgap gradient, favoring photogenerated charge separation and collection in optoelectronic devices. These advantages are hindered by the maximum elastic strain that a material can withstand before breaking. Nanomaterials derived by exfoliating transition metal dichalcogenides (TMDs) are an ideal playground for elastic deformation, as they can sustain large elastic strains, up to a few percent. However, exfoliable TMDs with highly strain-tunable properties have proven challenging for researchers to identify. We investigated 1T-ZrS2 and 1T-ZrSe2, exfoliable semiconductors with large bandgaps. Under compressive deformation, both TMDs dramatically change their physical properties. 1T-ZrSe2 undergoes a reversible transformation into an exotic three-dimensional lattice, with a semiconductor-to-metal transition. In ZrS2, the irreversible transformation between two different layered structures is accompanied by a sudden 14% bandgap reduction. These results establish that Zr-based TMDs are an optimal strain-tunable platform for spatially textured bandgaps, with a strong potential for novel optoelectronic devices and light harvesting.

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Type
research article
DOI
10.1021/acsmaterialslett.0c00252
Web of Science ID

WOS:000571390700008

Author(s)
Martino, Edoardo  
Santos-Cottin, David
Le Mardele, Florian
Semeniuk, Konstantin  
Pizzochero, Michele  
Cernevics, Kristians  
Baptiste, Benoit
Delbes, Ludovic
Klotz, Stefan
Capitani, Francesco
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Date Issued

2020-09-08

Publisher

AMER CHEMICAL SOC

Published in
Acs Materials Letters
Volume

2

Issue

9

Start page

1115

End page

1120

Subjects

Materials Science, Multidisciplinary

•

Materials Science

•

monolayer

•

coherent

•

mo

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LNNME  
LPRX  
LSE  
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Available on Infoscience
October 8, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/172318
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