4.8 Article

Composition-dependent Raman modes of Mo1-xWxS2 monolayer alloys

Journal

NANOSCALE
Volume 6, Issue 5, Pages 2833-2839

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c3nr05630a

Keywords

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Funding

  1. National Natural Science Foundation of China [21373066, 11304052, 11225421, 10934007]
  2. special funds for Major State Basic Research of China [2009CB929301]
  3. National Science Council of Taiwan [NSC 100-2112-M-011-001-MY3, NSC 101-2811-M-011-002]

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Two-dimensional (2D) transition-metal dichalcogenide alloys with tunable band gaps have promising applications in nanoelectronics and optoelectronics. Characterization of structures of 2D alloys, such as composition and atom mixing, is of fundamental importance to their applications. Here, we have conducted systematic Raman spectroscopic studies on Mo1-xWxS2 monolayers (0 <= x <= 1). First-order Raman modes and second-order Raman modes have been observed in the range of 100-480 cm(-1) in the 2D alloys. The out-of-plane A(1)' modes and in-plane E' modes showed one-mode and two-mode behaviors, respectively. The broadening of A(1)' and E' modes in the alloys has been observed. The disorder-related Raman peaks at similar to 360 cm(-1) were only observed in the 2D alloys but not in the two end materials. Modified random-element-isodisplacement (MREI) model has been adopted to successfully predict mode behaviors of A(1)' and E' modes in the monolayer alloys. Further, composition-dependent A(1)' and E' frequencies can be well fitted by the MREI model, giving composition-dependent force constants.

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