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Artificially stacked atomic layers: Toward new van der waals solids

  • Rice University
    ,
  • Ocean University of China
    ,
  • Universidad del Pais Vasco
    ,
  • Florida State University
    ,
  • CSIR - Indian Institute of Chemical Technology
    ,
  • Nanjing University
Research Output:
Contribution to journal
Article
Peer-review

Publication metrics

Metrics

SciVal
Citations
226
Scopus
Citations
SciVal
FWCI
8.53
SciVal
Author count
13
SciVal
Paper percentile
98
SciVal
Top percentile
5

Abstract

Strong in-plane bonding and weak van der Waals interplanar interactions characterize a large number of layered materials, as epitomized by graphite. The advent of graphene (G), individual layers from graphite, and atomic layers isolated from a few other van der Waals bonded layered compounds has enabled the ability to pick, place, and stack atomic layers of arbitrary compositions and build unique layered materials, which would be otherwise impossible to synthesize via other known techniques. Here we demonstrate this concept for solids consisting of randomly stacked layers of graphene and hexagonal boron nitride (h-BN). Dispersions of exfoliated h-BN layers and graphene have been prepared by liquid phase exfoliation methods and mixed, in various concentrations, to create artificially stacked h-BN/G solids. These van der Waals stacked hybrid solid materials show interesting electrical, mechanical, and optical properties distinctly different from their starting parent layers. From extensive first principle calculations we identify (i) a novel approach to control the dipole at the h-BN/G interface by properly sandwiching or sliding layers of h-BN and graphene, and (ii) a way to inject carriers in graphene upon UV excitations of the Frenkell-like excitons of the h-BN layer(s). Our combined approach could be used to create artificial materials, made predominantly from inter planar van der Waals stacking of robust bond saturated atomic layers of different solids with vastly different properties.

Publication Information

Output type

Research Output:
Contribution to journal
Article
Peer-review

Original language

English

Pages from-to (Number of pages)

Pages 3518-3525 (8 pages)

Journal (Volume, Issue Number)

Nano Letters (Volume 12, Issue 7)

Publication milestones

  • Published - 11/07/2012

Publication status

Published - 11/07/2012

ISSN

1530-6984

Publication IDs

  • Scopus: 84863855797
  • WOS: 000306296200028

Funding Details

FundersFunding numbers
FP7
267374, 228539
FP7
-