2017/03/31 by Sean M. Oliver, Ryan Beams, Sergiy Krylyuk +9 · 79 citations
Chemistry · Engineering · Materials Science · Physics and Astronomy · #2D Materials and Applications #Alloy #Band gap #Chalcogenide Semiconductor Thin Films #Chemistry #Computational chemistry #Condensed matter physics #Density functional theory #Diffraction #Materials science #Metallurgy #Optics #Perovskite Materials and Applications #Phase (matter) #Phase transition #Phonon #Physics #Point reflection #Raman spectroscopy #Semimetal #cond-mat.mes-hall #cond-mat.mtrl-sci
paper · pdf · doi:10.1088/2053-1583/aa7a32
published in 2D Materials 4(4), 045008 (IOP Publishing) · 18 pages, 5 figures, 1 table
arxiv created 2017/03/31 · openalex created_date 2017/04/14 · openalex publication_date 2017/08/31 · arxiv updated 2017/10/12 · openalex updated_date 2026/08/06
The structural polymorphism in transition metal dichalcogenides (TMDs) provides exciting opportunities for developing advanced electronics. For example, MoTe 2 crystallizes in the 2H semiconducting phase at ambient temperature and pressure, but transitions into the 1T' semimetallic phase at high temperatures. Alloying MoTe 2 with WTe 2 reduces the energy barrier between these two phases, while also allowing access to the T d Weyl semimetal phase. The W x Te 2 alloy system is therefore promising for developing phase change memory technology. However, achieving this goal necessitates a detailed understanding of the phase composition in the MoTe 2 -WTe 2 system. We combine polarization-resolved Raman spectroscopy with x-ray diffraction (XRD) and scanning transmission electron microscopy (STEM) to study bulk W x Te 2 alloys over the full compositional range x from 0 to 1. We identify Raman and XRD signatures characteristic of the 2H, 1T', and T d structural phases that agree with density-functional theory (DFT) calculations, and use them to identify phase fields in the MoTe 2 –WTe 2 system, including single-phase 2H, 1T', and T d regions, as well as a two-phase 1T' + T d region. Disorder arising from compositional fluctuations in W x Te 2 alloys breaks inversion and translational symmetry, leading to the activation of an infrared 1T'-MoTe 2 mode and the enhancement of a double-resonance Raman process in W x Te 2 alloys. Compositional fluctuations limit the phonon correlation length, which we estimate by fitting the observed asymmetric Raman lineshapes with a phonon confinement model. These observations reveal the important role of disorder in W x Te 2 alloys, clarify the structural phase boundaries, and provide a foundation for future explorations of phase transitions and electronic phenomena in this system.