Controlling the bandstructure through local-strain engineering is an exciting avenue for tailoring optoelectronic properties of materials at the nanoscale. Atomically thin materials are particularly well-suited for this purpose because they can withstand extreme nonhomogeneous deformations before rupture. Here, we study the effect of large localized strain in the electronic bandstructure of atomically thin MoS2. Using photoluminescence imaging, we observe a strain-induced reduction of the direct bandgap and funneling of photogenerated excitons toward regions of higher strain. To understand these results, we develop a nonuniform tight-binding model to calculate the electronic properties of MoS2 nanolayers with complex and realistic local strain geometries, finding good agreement with our experimental results.

Local Strain Engineering in Atomically Thin MoS2

Emmanuele Cappelluti;
2013

Abstract

Controlling the bandstructure through local-strain engineering is an exciting avenue for tailoring optoelectronic properties of materials at the nanoscale. Atomically thin materials are particularly well-suited for this purpose because they can withstand extreme nonhomogeneous deformations before rupture. Here, we study the effect of large localized strain in the electronic bandstructure of atomically thin MoS2. Using photoluminescence imaging, we observe a strain-induced reduction of the direct bandgap and funneling of photogenerated excitons toward regions of higher strain. To understand these results, we develop a nonuniform tight-binding model to calculate the electronic properties of MoS2 nanolayers with complex and realistic local strain geometries, finding good agreement with our experimental results.
2013
Istituto dei Sistemi Complessi - ISC
Inglese
13
11
5361
5366
6
http://pubs.acs.org/doi/abs/10.1021/nl402875m
Sì, ma tipo non specificato
Molybdenum disulfide nanosheets
atomically thin crystal
strain engineering
exciton trapping
funnel effect
Publication Date (Web): October 1, 2013. This work was supported by the European Union (FP7) through the program RODIN and the Dutch organization for Fundamental Research on Matter (FOM). A.C.-G. acknowledges fi nancial support through the FP7-Marie Curie Project PIEF-GA-2011- 300802 ( " STRENGTHNANO " ). R.R. acknowledges financial support from the Juan de la Cierva Program (MINECO, Spain). E.C. acknowledges financial support through the FP7- Marie Curie Project PIEF-GA-2009-251904. F.G. and R.R. acknowledge support from MINECO (Spain), through grant FIS2011-23713 and ERC Advanced grant no. 290846.
7
info:eu-repo/semantics/article
262
Castellanosgomez, Andres; Roldán, Rafael; Cappelluti, Emmanuele; Buscema, Michele; Guinea, Francisco; J van der Zant, Herre S; A Steele, Gary...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
none
   Strain engineering of atomically-thin nanomembrane-based electromechanical devices
   STRENGTHNANO
   FP7
   300802

   Suspended Graphene Nanostructures
   RODIN
   FP7
   246026

   Novel uses for graphene
   NOVGRAPHENE
   FP7
   290846
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/254408
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 1220
  • ???jsp.display-item.citation.isi??? 1199
social impact