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Sub-nanometre channels embedded in two-dimensional materials.
Han, Yimo; Li, Ming-Yang; Jung, Gang-Seob; Marsalis, Mark A; Qin, Zhao; Buehler, Markus J; Li, Lain-Jong; Muller, David A.
Afiliação
  • Han Y; School of Applied and Engineering Physics, Cornell University, Ithaca, New York 14850, USA.
  • Li MY; Physical Science and Engineering Division, King Abdullah University of Science and Technology, Thuwal 23955-6900, Kingdom of Saudi Arabia.
  • Jung GS; Research Center for Applied Sciences, Academia Sinica, Taipei 10617, Taiwan.
  • Marsalis MA; Department of Civil and Environmental Engineering, MIT, Cambridge, Massachusetts 02139, USA.
  • Qin Z; Department of Physics, Texas Tech University, Lubbock, Texas 79416, USA.
  • Buehler MJ; Department of Civil and Environmental Engineering, MIT, Cambridge, Massachusetts 02139, USA.
  • Li LJ; Department of Civil and Environmental Engineering, MIT, Cambridge, Massachusetts 02139, USA.
  • Muller DA; Physical Science and Engineering Division, King Abdullah University of Science and Technology, Thuwal 23955-6900, Kingdom of Saudi Arabia.
Nat Mater ; 17(2): 129-133, 2018 02.
Article em En | MEDLINE | ID: mdl-29200195
Two-dimensional (2D) materials are among the most promising candidates for next-generation electronics due to their atomic thinness, allowing for flexible transparent electronics and ultimate length scaling. Thus far, atomically thin p-n junctions, metal-semiconductor contacts, and metal-insulator barriers have been demonstrated. Although 2D materials achieve the thinnest possible devices, precise nanoscale control over the lateral dimensions is also necessary. Here, we report the direct synthesis of sub-nanometre-wide one-dimensional (1D) MoS2 channels embedded within WSe2 monolayers, using a dislocation-catalysed approach. The 1D channels have edges free of misfit dislocations and dangling bonds, forming a coherent interface with the embedding 2D matrix. Periodic dislocation arrays produce 2D superlattices of coherent MoS2 1D channels in WSe2. Using molecular dynamics simulations, we have identified other combinations of 2D materials where 1D channels can also be formed. The electronic band structure of these 1D channels offers the promise of carrier confinement in a direct-gap material and the charge separation needed to access the ultimate length scales necessary for future electronic applications.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Nat Mater Assunto da revista: CIENCIA / QUIMICA Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Nat Mater Assunto da revista: CIENCIA / QUIMICA Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Estados Unidos